The present disclosure relates to display systems and, more particularly, to augmented and virtual reality display systems.
Modern computing and display technologies have facilitated the development of systems for so called “virtual reality” or “augmented reality” experiences, wherein digitally reproduced images or portions thereof are presented to a user in a manner wherein they seem to be, or may be perceived as, real. A virtual reality, or “VR”, scenario typically involves presentation of digital or virtual image information without transparency to other actual real-world visual input; an augmented reality, or “AR”, scenario typically involves presentation of digital or virtual image information as an augmentation to visualization of the actual world around the user. A mixed reality, or “MR”, scenario is a type of AR scenario and typically involves virtual objects that are integrated into, and responsive to, the natural world. For example, in an MR scenario, AR image content may be blocked by or otherwise be perceived as interacting with objects in the real world.
Referring to
Systems and methods disclosed herein address various challenges related to AR and VR technology.
For purposes of summarizing the disclosure, certain aspects, advantages, and novel features have been described herein. It can be to be understood that not necessarily all such advantages can be achieved in accordance with any particular embodiment disclosed herein. Thus, the embodiments disclosed herein can be embodied or carried out in a manner that achieves or optimizes one advantage or group of advantages as taught or suggested herein without necessarily achieving others.
Disclosed herein is a head-mounted display system. In one configuration, the head-mounted display system can include a head-mountable frame, a light projection system, a waveguide supported by the frame, a diffraction grating, a first layer over said diffraction grating, and a second layer that includes a metal disposed over the first layer. The light projection system can be configured to output light to provide image content. The waveguide can include a substrate configured to guide at least a portion of the light from said light projection system coupled into the waveguide. The diffraction grating can include material different than said substrate over said substrate. The diffraction grating can have a first diffraction efficiency for a first polarization over a range of angles of light incident thereon and can have a second diffraction efficiency for a second polarization over the range of angles of light incident thereon, the first diffraction efficiency being from 1 to 2 times the second diffraction efficiency.
In another configuration, the head-mounted display system can include a head-mountable frame, a light projection system, a waveguide supported by the frame, a diffraction grating formed in a substrate, a first layer disposed over said diffraction grating formed in said substrate, and a second layer comprising metal disposed over said diffraction grating formed in said substrate. The light projection system can be configured to output light to provide image content. The waveguide can include the substrate. The substrate can include optically transparent material. The substrate can be configured to guide at least a portion of the light from said light projection system coupled into said waveguide via said diffraction grating. The diffraction grating can have a first diffraction efficiency for a first polarization over a range of angles of light incident thereon and can have a second diffraction efficiency for a second polarization over the range of angles of light incident thereon, the first diffraction efficiency being from 1 to 2 times the second diffraction efficiency.
In some configurations, a head-mounted display system can include: a head-mountable frame; a light projection system configured to output light to provide image content; a waveguide supported by the frame, the waveguide that may include a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide; a first diffraction grating that may include material different than said substrate over said substrate; a first layer disposed over said first diffraction grating; and a second layer that may include metal disposed over said first diffraction grating such that said diffraction grating has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon and a second diffraction efficiency for a second polarization over the range of angles of light incident thereon, the first diffraction efficiency being from 1 to 2 times the second diffraction efficiency.
In some configurations, a head-mounted display system can include: a head-mountable frame; a light projection system configured to output light to provide image content; a waveguide supported by the frame, the waveguide can include a substrate that may include optically transparent material and a first diffraction grating formed in said substrate, said substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide via, a first layer disposed over said first diffraction grating formed in said substrate; a second layer that may include metal disposed over said first diffraction grating formed in said substrate such that the first diffraction grating has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon and a second diffraction efficiency for a second polarization over the range of angles of light incident thereon, the first diffraction efficiency being from 1 to 2 times the second diffraction efficiency.
In some configurations, a head-mounted display system can include: a head-mountable frame; a light projection system configured to output light to provide image content; a waveguide supported by the frame, the waveguide can include a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide; a first diffraction grating that may include material different than said substrate; a first layer disposed over said first diffraction grating such that the first diffraction grating has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is greater than a second diffraction efficiency for a second polarization over a range of angles of light incident thereon; and a second layer disposed over said first diffraction grating such that the first diffraction grating has a third diffraction efficiency for said second polarization over said range of angles of light incident thereon that is greater than a fourth diffraction efficiency for the first polarization over a range of angles of light incident thereon, wherein a diffraction efficiency of the combination of the first diffraction grating together with the first and second layers is configured to provide a fifth diffraction efficiency for the first polarization over the range of angles of light incident thereon and has a sixth diffraction efficiency for a second polarization over the range of angles of light incident thereon, the fifth diffraction efficiency being from 1 to 2 times the sixth diffraction efficiency.
In some configurations, a head-mounted display system can include: a head-mountable frame; a light projection system configured to output light to provide image content; and a waveguide supported by the frame, the waveguide can include a substrate that may include optically transparent material and a first diffraction grating formed in said substrate, said substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide, a first layer disposed over said first diffraction grating formed in said substrate, the first layer together with said first diffraction grating configured to provide a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is greater than a second diffraction efficiency for a second polarization over a range of angles of light incident thereon; and a second layer disposed over said first diffraction grating formed in said substrate, the second layer together with said first diffraction grating configured to provide a third diffraction efficiency for said second polarization over said range of angles of light incident thereon that is greater than a fourth diffraction efficiency for the first polarization over a range of angles of light incident thereon, wherein the first diffraction grating together with the first and second layers is configured to provide a fifth diffraction efficiency for a first polarization over a range of angles of light incident thereon and a sixth diffraction efficiency for a second polarization over the range of angles of light incident thereon, the fifth diffraction efficiency being from 1 to 2 times the sixth diffraction efficiency.
In some configurations, a head-mounted display system can include: a head-mountable frame; a light projection system configured to output light to provide image content; a waveguide supported by the frame, the waveguide can include a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide; a first diffraction grating that may include material different than said substrate over said substrate; and a first layer that may include multilayer coating disposed over said first diffraction grating, the first diffraction grating together with the first layer configured to have a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is greater than a second diffraction efficiency for a second polarization over a range of angles of light incident thereon.
In some configurations, a head-mounted display system can include: a head-mountable frame; a light projection system configured to output light to provide image content; a waveguide supported by the frame, the waveguide that may include a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide; a first diffraction grating configured to have a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is greater than a second diffraction efficiency for a second polarization over a range of angles of light incident thereon.
In some configurations, a head-mounted display system can include: a head-mountable frame; a light projection system configured to output light to provide image content; and a waveguide supported by the frame, the waveguide can include a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide; a first diffraction grating that may include material different than said substrate over said substrate, wherein the substrate can include a material having a first index of refraction; a first layer disposed over said first diffraction grating, wherein the first layer can include a material having a second index of refraction; a material disposed over said first layer having a third index of refraction between the second index of refraction and an index of refraction of air, wherein said first diffraction grating together with the first layer and the material over the first layer is configured to have a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is greater than a second diffraction efficiency for a second polarization over a range of angles of light incident thereon.
In some configurations, a head-mounted display system can include: a head-mountable frame; a light projection system configured to output light to provide image content; a waveguide supported by the frame, the waveguide that may include a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide; a first diffraction grating; and a first layer disposed over said first diffraction grating such that said diffraction grating has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is from 1 to 2 times a second diffraction efficiency for a second polarization over a range of angles of light incident thereon.
A method of fabricating a diffraction grating with reduced polarization sensitivity, the method can include: forming one or more diffractive features in or on a substrate configured to guide at least a portion of light from a light projection system coupled into the substrate; depositing a first layer over said one or more diffractive features; and depositing a second layer over said one or more diffractive features such that the one or more diffractive features has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon and a second diffraction efficiency for a second polarization over the range of angles of light incident thereon, the first diffraction efficiency being from 1 to 2 times the second diffraction efficiency.
In some configurations, a head-mounted display system can include: a head-mountable frame; a light projection system configured to output light to provide image content; a waveguide supported by the frame, the waveguide that may include a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide; a first diffraction grating configured such that said diffraction grating has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is from 1 to 2 times a second diffraction efficiency for a second polarization over a range of angles of light incident thereon.
In some configurations. a head-mounted display system can include: a head-mountable frame; a light projection system configured to output light to provide image content; a waveguide supported by the frame, the waveguide that may include a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide, said substrate having a refractive index of less than 1.9; a first diffraction grating configured such that said diffraction grating has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is from 1 to 2 times a second diffraction efficiency for a second polarization over a range of angles of light incident thereon.
Throughout the drawings, reference numbers are re-used to indicate correspondence between referenced elements. The drawings are provided to illustrate embodiments of the features described herein and not to limit the scope thereof.
Although certain preferred embodiments and examples are disclosed below, inventive subject matter extends beyond the specifically disclosed embodiments to other alternative embodiments and/or uses of the invention, and to modifications and equivalents thereof. Thus, the scope of the inventions herein disclosed is not limited by any of the particular embodiments described below. For example, in any method or process disclosed herein, the acts or operations of the method or process may be performed in any suitable sequence and are not necessarily limited to any particular disclosed sequence. For purposes of contrasting various embodiments with the prior art, certain aspects and advantages of these embodiments are described. Not necessarily all such aspects or advantages are achieved by any particular embodiment. Thus, for example, various embodiments may be carried out in a manner that achieves or optimizes one advantage or group of advantages as taught herein without necessarily achieving other aspects or advantages as may also be taught or suggested herein.
AR systems may display virtual content to a user, or viewer, while still allowing the user to see the world around them. Preferably, this content is displayed on a head-mounted display, e.g., as part of eyewear, that projects image information to the user's eyes. In addition, the display may also transmit light from the surrounding environment to the user's eyes, to allow a view of that surrounding environment. As used herein, it will be appreciated that a “head-mounted” or “head mountable” display is a display that may be mounted on the head of a viewer or user.
In some AR systems, virtual/augmented/mixed display having a relatively high field of view (FOV) can enhance the viewing experience. The FOV of the display depends on the angle of light output by waveguides of the eyepiece, through which the viewer sees images projected into his or her eye. A waveguide having a relatively high refractive index, e.g., 2.0 or greater, can provide a relatively high FOV. However, to efficiently couple light into the high refractive index waveguide, the diffractive optical coupling elements should also have a correspondingly high refractive index. To achieve this goal, among other advantages, some displays for AR systems according to embodiments described herein include a waveguide comprising a relatively high index (e.g., greater than or equal to 2.0) material, having formed thereon respective diffraction gratings with correspondingly high refractive index, such a Li-based oxide. For example, a diffraction grating may be formed directly on a Li-based oxide waveguide by patterning a surface portion of the waveguide formed of a Li-based oxide.
Some high refractive index diffractive optical coupling elements such as in-coupling or out-coupling optical elements have strong polarization dependence. For example, in-coupling gratings (ICGs) for in-coupling light into a waveguide wherein the diffractive optical coupling element comprises high refractive index material may admit light of a given polarization significantly more than light of another polarization. Such elements may, for example, in-couple light with TM polarization into the waveguide at a rate approximately 3 times that of light with TE polarization. Diffractive optical coupling elements with this kind of polarization dependence may have reduced efficiency (due to the poor efficiency and general rejection of one polarization) and may also create coherent artifacts and reduce the uniformity of a far field image formed by light coupled out of the waveguide. To obtain diffractive optical coupling elements that are polarization-insensitive or at least that have reduced polarization sensitivity (e.g., that couple light with an efficiency that is relatively independent of polarization), some displays for AR systems according to various implementations described herein include a waveguide with diffraction gratings formed with blazed geometries. The diffraction grating may also be formed directly in the waveguide, which may comprise high index material (e.g. having an index of refraction of at least 1.9, 2.0, 2.1, 2.2, 2.3, 2.4, 2.5, 2.6, or up to 2.7 or any range between any of these values). A diffractive grating may, for example, be formed in high index materials such as such as Li-based oxide like lithium niobate (LiNbO3) or lithium tantalate (LiTaO3) or such as zirconium oxide (ZrO2), titanium dioxide (TiO2) or silicon carbide (SiC), for example, by patterning the high index material with a blazed geometry.
Reference will now be made to the drawings, in which like reference numerals refer to like parts throughout. Unless indicated otherwise, the drawings are schematic not necessarily drawn to scale.
With continued reference to
Generating a realistic and comfortable perception of depth is challenging, however. It will be appreciated that light from objects at different distances from the eyes have wavefronts with different amounts of divergence.
With continued reference to
With reference now to
Without being limited by theory, it is believed that viewers of an object may perceive the object as being “three-dimensional” due to a combination of vergence and accommodation. As noted above, vergence movements (e.g., rotation of the eyes so that the pupils move toward or away from each other to converge the lines of sight of the eyes to fixate upon an object) of the two eyes relative to each other are closely associated with accommodation of the lenses of the eyes. Under normal conditions, changing the shapes of the lenses of the eyes to change focus from one object to another object at a different distance will automatically cause a matching change in vergence to the same distance, under a relationship known as the “accommodation-vergence reflex.” Likewise, a change in vergence will trigger a matching change in lens shape under normal conditions.
With reference now to
Undesirably, many users of conventional “3-D” display systems find such conventional systems to be uncomfortable or may not perceive a sense of depth at all due to a mismatch between accommodative and vergence states in these displays. As noted above, many stereoscopic or “3-D” display systems display a scene by providing slightly different images to each eye. Such systems are uncomfortable for many viewers, since they, among other things, simply provide different presentations of a scene and cause changes in the vergence states of the eyes, but without a corresponding change in the accommodative states of those eyes. Rather, the images are shown by a display at a fixed distance from the eyes, such that the eyes view all the image information at a single accommodative state. Such an arrangement works against the “accommodation-vergence reflex” by causing changes in the vergence state without a matching change in the accommodative state. This mismatch is believed to cause viewer discomfort. Display systems that provide a better match between accommodation and vergence may form more realistic and comfortable simulations of three-dimensional imagery.
Without being limited by theory, it is believed that the human eye typically may interpret a finite number of depth planes to provide depth perception. Consequently, a highly believable simulation of perceived depth may be achieved by providing, to the eye, different presentations of an image corresponding to each of these limited numbers of depth planes. In some embodiments, the different presentations may provide both cues to vergence and matching cues to accommodation, thereby providing physiologically correct accommodation-vergence matching.
With continued reference to
In the illustrated embodiment, the distance, along the z-axis, of the depth plane 240 containing the point 221 is 1 m. As used herein, distances or depths along the z-axis may be measured with a zero-point located at the exit pupils of the user's eyes. Thus, a depth plane 240 located at a depth of 1 m corresponds to a distance of 1 m away from the exit pupils of the user's eyes, on the optical axis of those eyes with the eyes directed towards optical infinity. As an approximation, the depth or distance along the z-axis may be measured from the display in front of the user's eyes (e.g., from the surface of a waveguide), plus a value for the distance between the device and the exit pupils of the user's eyes. That value may be called the eye relief and corresponds to the distance between the exit pupil of the user's eye and the display worn by the user in front of the eye. In practice, the value for the eye relief may be a normalized value used generally for all viewers. For example, the eye relief may be assumed to be 20 mm and a depth plane that is at a depth of 1 m may be at a distance of 980 mm in front of the display.
With reference now to
It will be appreciated that each of the accommodative and vergence states of the eyes 210, 220 are associated with a particular distance on the z-axis. For example, an object at a particular distance from the eyes 210, 220 causes those eyes to assume particular accommodative states based upon the distances of the object. The distance associated with a particular accommodative state may be referred to as the accommodation distance, Ad. Similarly, there are particular vergence distances, Vd, associated with the eyes in particular vergence states, or positions relative to one another. Where the accommodation distance and the vergence distance match, the relationship between accommodation and vergence may be said to be physiologically correct. This is considered to be the most comfortable scenario for a viewer.
In stereoscopic displays, however, the accommodation distance and the vergence distance may not always match. For example, as illustrated in
In some embodiments, it will be appreciated that a reference point other than exit pupils of the eyes 210, 220 may be utilized for determining distance for determining accommodation-vergence mismatch, so long as the same reference point is utilized for the accommodation distance and the vergence distance. For example, the distances could be measured from the cornea to the depth plane, from the retina to the depth plane, from the eyepiece (e.g., a waveguide of the display device) to the depth plane, and so on.
Without being limited by theory, it is believed that users may still perceive accommodation-vergence mismatches of up to about 0.25 diopter, up to about 0.33 diopter, and up to about 0.5 diopter as being physiologically correct, without the mismatch itself causing significant discomfort. In some embodiments, display systems disclosed herein (e.g., the display system 250,
In some embodiments, a single waveguide may be configured to output light with a set amount of wavefront divergence corresponding to a single or limited number of depth planes and/or the waveguide may be configured to output light of a limited range of wavelengths. Consequently, in some embodiments, a plurality or stack of waveguides may be utilized to provide different amounts of wavefront divergence for different depth planes and/or to output light of different ranges of wavelengths. As used herein, it will be appreciated at a depth plane may be planar or may follow the contours of a curved surface.
In some embodiments, the display system 250 may be configured to provide substantially continuous cues to vergence and multiple discrete cues to accommodation. The cues to vergence may be provided by displaying different images to each of the eyes of the user, and the cues to accommodation may be provided by outputting the light that forms the images with selectable discrete amounts of wavefront divergence. Stated another way, the display system 250 may be configured to output light with variable levels of wavefront divergence. In some embodiments, each discrete level of wavefront divergence corresponds to a particular depth plane and may be provided by a particular one of the waveguides 270, 280, 290, 300, 310.
With continued reference to
In some embodiments, the image injection devices 360, 370, 380, 390, 400 are discrete displays that each produce image information for injection into a corresponding waveguide 270, 280, 290, 300, 310, respectively. In some other embodiments, the image injection devices 360, 370, 380, 390, 400 are the output ends of a single multiplexed display which may, e.g., pipe image information via one or more optical conduits (such as fiber optic cables) to each of the image injection devices 360, 370, 380, 390, 400. It will be appreciated that the image information provided by the image injection devices 360, 370, 380, 390, 400 may include light of different wavelengths, or colors (e.g., different component colors, as discussed herein).
In some embodiments, the light injected into the waveguides 270, 280, 290, 300, 310 is provided by a light projector system 520, which comprises a light module 530, which may include a light emitter, such as a light emitting diode (LED). The light from the light module 530 may be directed to and modified by a light modulator 540, e.g., a spatial light modulator, via a beam splitter 550. The light modulator 540 may be configured to change the perceived intensity of the light injected into the waveguides 270, 280, 290, 300, 310 to encode the light with image information. Examples of spatial light modulators include liquid crystal displays (LCD) including a liquid crystal on silicon (LCOS) displays. It will be appreciated that the image injection devices 360, 370, 380, 390, 400 are illustrated schematically and, in some embodiments, these image injection devices may represent different light paths and locations in a common projection system configured to output light into associated ones of the waveguides 270, 280, 290, 300, 310. In some embodiments, the waveguides of the waveguide assembly 260 may function as ideal lens while relaying light injected into the waveguides out to the user's eyes. In this conception, the object may be the spatial light modulator 540 and the image may be the image on the depth plane.
In some embodiments, the display system 250 may be a scanning fiber display comprising one or more scanning fibers configured to project light in various patterns (e.g., raster scan, spiral scan, Lissajous patterns, etc.) into one or more waveguides 270, 280, 290, 300, 310 and ultimately to the eye 210 of the viewer. In some embodiments, the illustrated image injection devices 360, 370, 380, 390, 400 may schematically represent a single scanning fiber or a bundle of scanning fibers configured to inject light into one or a plurality of the waveguides 270, 280, 290, 300, 310. In some other embodiments, the illustrated image injection devices 360, 370, 380, 390, 400 may schematically represent a plurality of scanning fibers or a plurality of bundles of scanning fibers, each of which are configured to inject light into an associated one of the waveguides 270, 280, 290, 300, 310. It will be appreciated that one or more optical fibers may be configured to transmit light from the light module 530 to the one or more waveguides 270, 280, 290, 300, 310. It will be appreciated that one or more intervening optical structures may be provided between the scanning fiber, or fibers, and the one or more waveguides 270, 280, 290, 300, 310 to, e.g., redirect light exiting the scanning fiber into the one or more waveguides 270, 280, 290, 300, 310.
A controller 560 controls the operation of one or more of the stacked waveguide assembly 260, including operation of the image injection devices 360, 370, 380, 390, 400, the light source 530, and the light modulator 540. In some embodiments, the controller 560 is part of the local data processing module 140. The controller 560 includes programming (e.g., instructions in a non-transitory medium) that regulates the timing and provision of image information to the waveguides 270, 280, 290, 300, 310 according to, e.g., any of the various schemes disclosed herein. In some embodiments, the controller may be a single integral device, or a distributed system connected by wired or wireless communication channels. The controller 560 may be part of the processing modules 140 or 150 (
With continued reference to
With continued reference to
The other waveguide layers 300, 310 and lenses 330, 320 are similarly configured, with the highest waveguide 310 in the stack sending its output through all of the lenses between it and the eye for an aggregate focal power representative of the closest focal plane to the person. To compensate for the stack of lenses 320, 330, 340, 350 when viewing/interpreting light coming from the world 510 on the other side of the stacked waveguide assembly 260, a compensating lens layer 620 may be disposed at the top of the stack to compensate for the aggregate power of the lens stack 320, 330, 340, 350 below. Such a configuration provides as many perceived focal planes as there are available waveguide/lens pairings. Both the out-coupling optical elements of the waveguides and the focusing aspects of the lenses may be static (i.e., not dynamic, or electro-active). In some alternative embodiments, either or both may be dynamic using electro-active features.
In some embodiments, two or more of the waveguides 270, 280, 290, 300, 310 may have the same associated depth plane. For example, multiple waveguides 270, 280, 290, 300, 310 may be configured to output images set to the same depth plane, or multiple subsets of the waveguides 270, 280, 290, 300, 310 may be configured to output images set to the same plurality of depth planes, with one set for each depth plane. This may provide advantages for forming a tiled image to provide an expanded field of view at those depth planes.
With continued reference to
In some embodiments, the out-coupling optical elements 570, 580, 590, 600, 610 are diffractive features that form a diffraction pattern, or “diffractive optical element” (also referred to herein as a “DOE”). Preferably, the DOE's have a sufficiently low diffraction efficiency so that only a portion of the light of the beam is deflected away toward the eye 210 with each intersection of the DOE, while the rest continues to move through a waveguide via TIR. The light carrying the image information is thus divided into a number of related exit beams that exit the waveguide at a multiplicity of locations and the result is a fairly uniform pattern of exit emission toward the eye 210 for this particular collimated beam bouncing around within a waveguide.
In some embodiments, one or more DOEs may be switchable between “on” states in which they actively diffract, and “off” states in which they do not significantly diffract. For instance, a switchable DOE may comprise a layer of polymer dispersed liquid crystal, in which microdroplets comprise a diffraction pattern in a host medium, and the refractive index of the microdroplets may be switched to substantially match the refractive index of the host material (in which case the pattern does not appreciably diffract incident light) or the microdroplet may be switched to an index that does not match that of the host medium (in which case the pattern actively diffracts incident light).
In some embodiments, a camera assembly 630 (e.g., a digital camera, including visible light and infrared light cameras) may be provided to capture images of the eye 210 and/or tissue around the eye 210 to, e.g., detect user inputs and/or to monitor the physiological state of the user. As used herein, a camera may be any image capture device. In some embodiments, the camera assembly 630 may include an image capture device and a light source to project light (e.g., infrared light) to the eye, which may then be reflected by the eye and detected by the image capture device. In some embodiments, the camera assembly 630 may be attached to the frame 80 (
With reference now to
In some embodiments, a full color image may be formed at each depth plane by overlaying images in each of the component colors, e.g., three or more component colors.
In some embodiments, light of each component color may be outputted by a single dedicated waveguide and, consequently, each depth plane may have multiple waveguides associated with it. In such embodiments, each box in the figures including the letters G, R, or B may be understood to represent an individual waveguide, and three waveguides may be provided per depth plane where three component color images are provided per depth plane. While the waveguides associated with each depth plane are shown adjacent to one another in this drawing for ease of description, it will be appreciated that, in a physical device, the waveguides may all be arranged in a stack with one waveguide per level. In some other embodiments, multiple component colors may be outputted by the same waveguide, such that, e.g., only a single waveguide may be provided per depth plane.
With continued reference to
It will be appreciated that references to a given color of light throughout this disclosure will be understood to encompass light of one or more wavelengths within a range of wavelengths of light that are perceived by a viewer as being of that given color. For example, red light may include light of one or more wavelengths in the range of about 620-780 nm, green light may include light of one or more wavelengths in the range of about 492-577 nm, and blue light may include light of one or more wavelengths in the range of about 435-493 nm.
In some embodiments, the light source 530 (
With reference now to
The illustrated set 660 of stacked waveguides includes waveguides 670, 680, and 690. Each waveguide includes an associated in-coupling optical element (which may also be referred to as a light input area on the waveguide), with, e.g., in-coupling optical element 700 disposed on a major surface (e.g., an upper major surface) of waveguide 670, in-coupling optical element 710 disposed on a major surface (e.g., an upper major surface) of waveguide 680, and in-coupling optical element 720 disposed on a major surface (e.g., an upper major surface) of waveguide 690. In some embodiments, one or more of the in-coupling optical elements 700, 710, 720 may be disposed on the bottom major surface of the respective waveguide 670, 680, 690 (particularly where the one or more in-coupling optical elements are reflective, deflecting optical elements). As illustrated, the in-coupling optical elements 700, 710, 720 may be disposed on the upper major surface of their respective waveguide 670, 680, 690 (or the top of the next lower waveguide), particularly where those in-coupling optical elements are transmissive, deflecting optical elements. In some embodiments, the in-coupling optical elements 700, 710, 720 may be disposed in the body of the respective waveguide 670, 680, 690. In some embodiments, as discussed herein, the in-coupling optical elements 700, 710, 720 are wavelength selective, such that they selectively redirect one or more wavelengths of light, while transmitting other wavelengths of light. While illustrated on one side or corner of their respective waveguide 670, 680, 690, it will be appreciated that the in-coupling optical elements 700, 710, 720 may be disposed in other areas of their respective waveguide 670, 680, 690 in some embodiments.
As illustrated, the in-coupling optical elements 700, 710, 720 may be laterally offset from one another. In some embodiments, each in-coupling optical element may be offset such that it receives light without that light passing through another in-coupling optical element. For example, each in-coupling optical element 700, 710, 720 may be configured to receive light from a different image injection device 360, 370, 380, 390, and 400 as shown in
Each waveguide also includes associated light distributing elements, with, e.g., light distributing elements 730 disposed on a major surface (e.g., a top major surface) of waveguide 670, light distributing elements 740 disposed on a major surface (e.g., a top major surface) of waveguide 680, and light distributing elements 750 disposed on a major surface (e.g., a top major surface) of waveguide 690. In some other embodiments, the light distributing elements 730, 740, 750, may be disposed on a bottom major surface of associated waveguides 670, 680, 690, respectively. In some other embodiments, the light distributing elements 730, 740, 750, may be disposed on both top and bottom major surface of associated waveguides 670, 680, 690, respectively; or the light distributing elements 730, 740, 750, may be disposed on different ones of the top and bottom major surfaces in different associated waveguides 670, 680, 690, respectively.
The waveguides 670, 680, 690 may be spaced apart and separated by, e.g., gas, liquid, and/or solid layers of material. For example, as illustrated, layer 760a may separate waveguides 670 and 680; and layer 760b may separate waveguides 680 and 690. In some embodiments, the layers 760a and 760b are formed of low refractive index materials (that is, materials having a lower refractive index than the material forming the immediately adjacent one of waveguides 670, 680, 690). Preferably, the refractive index of the material forming the layers 760a, 760b is 0.05 or more, or 0.10 or less than the refractive index of the material forming the waveguides 670, 680, 690. Advantageously, the lower refractive index layers 760a, 760b may function as cladding layers that facilitate total internal reflection (TIR) of light through the waveguides 670, 680, 690 (e.g., TIR between the top and bottom major surfaces of each waveguide). In some embodiments, the layers 760a, 760b are formed of air. While not illustrated, it will be appreciated that the top and bottom of the illustrated set 660 of waveguides may include immediately neighboring cladding layers.
Preferably, for ease of manufacturing and other considerations, the material forming the waveguides 670, 680, 690 are similar or the same, and the material forming the layers 760a, 760b are similar or the same. In some embodiments, the material forming the waveguides 670, 680, 690 may be different between one or more waveguides, and/or the material forming the layers 760a, 760b may be different, while still holding to the various refractive index relationships noted above.
With continued reference to
In some embodiments, the light rays 770, 780, 790 have different properties, e.g., different wavelengths or different ranges of wavelengths, which may correspond to different colors. The in-coupling optical elements 700, 710, 720 each deflect the incident light such that the light propagates through a respective one of the waveguides 670, 680, 690 by TIR. In some embodiments, the incoupling optical elements 700, 710, 720 each selectively deflect one or more particular wavelengths of light, while transmitting other wavelengths to an underlying waveguide and associated incoupling optical element.
For example, in-coupling optical element 700 may be configured to deflect ray 770, which has a first wavelength or range of wavelengths, while transmitting rays 780 and 790, which have different second and third wavelengths or ranges of wavelengths, respectively. The transmitted ray 780 impinges on and is deflected by the in-coupling optical element 710, which is configured to deflect light of a second wavelength or range of wavelengths. The ray 790 is deflected by the in-coupling optical element 720, which is configured to selectively deflect light of third wavelength or range of wavelengths.
With continued reference to
With reference now to
In some embodiments, the light distributing elements 730, 740, 750 are orthogonal pupil expanders (OPE's). In some embodiments, the OPE's deflect or distribute light to the out-coupling optical elements 800, 810, 820 and, in some embodiments, may also increase the beam or spot size of this light as it propagates to the out-coupling optical elements. In some embodiments, the light distributing elements 730, 740, 750 may be omitted and the in-coupling optical elements 700, 710, 720 may be configured to deflect light directly to the out-coupling optical elements 800, 810, 820. For example, with reference to
Accordingly, with reference to
With continued reference to
With continued reference to
With continued reference to
A. Diffraction Gratings Having Reduced Polarization Sensitivity
Providing a high quality immersive experience to a user of waveguide-based display systems such as various display systems configured for virtual/augmented/mixed display applications described supra, can depend on, among other things, various characteristics of the light coupling into and/or out of the waveguides in the eyepiece of the display systems. For example, a virtual/augmented/mixed display having high light incoupling and outcoupling efficiencies can enhance the viewing experience by increasing brightness of the light directed to the user's eye. As discussed above, in-coupling optical elements such as in-coupling diffraction gratings may be employed to couple light into the waveguides to be guided therein by total internal reflection. Similarly, out-coupling optical elements such as out-coupling diffraction gratings may be employed to couple light guided within the waveguides by total internal reflection out of the waveguides.
As described supra, e.g., in reference to
To achieve desirable characteristics of in-coupling of light into (or out-coupling of light from) the waveguides 270, 280, 290, 300, 310, the optical elements 570, 580, 590, 600, 610 configured as diffraction gratings can be formed of a suitable material and have a suitable structure for controlling various optical properties, including diffraction properties such as diffraction efficiency as a function of polarization. Possible desirable diffraction properties may include, among other properties, any one or more of the following: spectral selectivity, angular selectivity, polarization selectivity (or non-selectivity), high spectral bandwidth, high diffraction efficiencies or a wide field of view (FOV).
Some diffraction gratings have strong polarization dependence and thus may have relatively diminished overall efficiency (due to the rejection of one polarization). In some cases, such diffraction gratings may also create coherent artifacts and reduce the uniformity of a far field image. For example, a diffraction grating may be formed by imprinted a layer of patternable material and metallizing the patterned layer (e.g., of resist) to form a plurality of diffractive features. Some grating designs formed in this manner may diffract more light into a given diffractive order. Such a diffraction grating may be highly efficient in one polarization (for example, TM or P-Pol), but may be inefficient for non-polarized light.
In another example,
To provide diffraction gratings that have reduced polarization sensitivity (e.g., that couple light with an efficiency that is relatively independent of polarization), some displays for AR systems according to implementations described herein include a waveguide with diffraction gratings formed therein having multiple coatings. For example, the diffracting gratings can include patterned dielectric (e.g., patterned photoresist) having formed thereon a first transmissive layer possibly a non-metallic (e.g., dielectric or semiconductor) coating and a second layer comprising metal over the first transmissive layer. In some implementations, a coated diffraction grating may achieve enhanced grating diffraction efficiency for a given diffraction order, while the diffraction efficiency for the other orders is reduced or minimized. As a result, more light may be directed into the particular given diffractive order as opposed to any of the other orders in some implementations.
For example, as illustrated in
Example efficiencies for different types (e.g. polarization) of light incident on the diffraction grating 1201 illustrated in
As illustrated in
As shown in Table 2, the grating 1205 illustrated in
Example efficiencies for different types (e.g. polarization) of light incident on the diffraction grating 1205 illustrated in
In operation, when an incident light beam 1016, e.g., visible light, such as from a light projection system that provide image content is incident on the blazed diffraction grating 1008 at an angle of incidence, a, measured relative to a plane normal 1002 that is normal or orthogonal to the extended surface or plane of the blazed diffraction grating or the substrate/waveguide and/or the surface 1004S of the waveguide 1004, for example, major surface of the waveguide on which the grating is formed (shown in
As described herein, a light beam that is incident at an angle in a clockwise direction relative to the plane normal 1002 (i.e., on the right side of the plane normal 1002) as in the illustrated implementation is referred to as having a negative α (α<0), whereas a light beam that is incident at an angle in a counter-clockwise direction relative to the plane normal 1012 (i.e., on the left side of the plane normal) is referred to as having a positive α (α>0).
A suitable combination of high index material and/or the structure of the diffraction grating 1008 may result in a particular range (Δα) of angle of incidence α, referred to herein as a range of angles of acceptance or a field-of-view (FOV). One range, Δα, may be described by a range of angles spanning negative and/or positive values of α, outside of which the diffraction efficiency falls off by more than 10%, 25%, more than 50%, or more than 75%, 80%, 90%, 95%, or any ranges between any of these values, relative to the diffraction efficiency at α=0 or some other direction. In some implementations, having 4a within the range in which the diffraction efficiency is relatively high and constant may be desirable, e.g., where a uniform intensity of diffracted light is desired within the Δα. Thus, in some implementations, Δα is associated with the angular bandwidth of the diffraction grating 1008, such that an incident light beam 1016 within the Δα is efficiently diffracted by the diffraction grating 1008 at a diffraction angle θ with respect to the surface normal 1002 (e.g., a direction parallel to the y-z plane) wherein θ exceeds θTIR such that the diffracted light is guided within the waveguide 1004 under total internal reflection (TIR). In some implementations, this angle Δα range may affect the field-of-view seen by the user. Note, that in various implementations, the light can be directed onto the in-coupling grating (ICG) from either side. For example, the light can be directed through the substrate or waveguide 1004 incident onto a reflective in-coupling grating (ICG) 1008 such as the one shown in
The peaks 1003 have heights, H, corresponding to the distance from the bottom of the groove 1005 to the top of the peak 1003. Accordingly, this value may be referred to herein as the peak height and/or groove depth as well as grating height or grating depth or as the height of the diffractive features of the diffraction grating. In the example shown in
The slopes can be tilted at an angle, δ, with respect to a plane parallel to the surface of the grating 1008 or waveguide (e.g., the surface 1004S of the waveguide, which may extend beyond the grating or the surface 1004S′ of the waveguide opposite the grating of
As illustrated in
In designs where the diffraction features are asymmetric, for example, where the inclination of the first sloping portion is shallower while the slope of the second sloping portion is steeper, the diffraction features may be considered to be formed from repeating slopes and steps. Such structures may be referred to herein as a tilted step structure. In some implementations, the second portion may be so steep as to not slope; for example, the second portion may be parallel to the normal 1002.
In other implementations, the “sawtooth” pattern, for example, the peaks 1003 and/or grooves 1005 may be symmetric. For example, the first and second sloping portions 1007, 1009 may have the same inclination and be the same width.
The cross-section pattern shown in
Regardless of whether the diffraction features are asymmetric or symmetric, in some implementations, a plateau or flat portion may be located at the top of the peak 1003 as will be discussed below. Diffraction gratings 1008 comprising diffraction features having plateaus or flat portions on top of the peaks 1003 are shown, for example, in
According to various embodiments, when configured as an in-coupling optical element or an in-coupling diffraction grating, the diffraction grating 1008 can diffractively couple light incident into the substrate 1004, which can be a waveguide as described above. The diffraction grating 1008 may, if desired, be configured as an out-coupling optical element and, in such embodiments, can diffractively couple light from the substrate 1004, which can be a waveguide also as described above.
Referring to
The polymer may be patterned, for example, etched, to fabricate the grating structures. Diffractive features of a diffraction grating 1008, 1010 such as lines are formed in the substrate 1004 such as in the surface of the substrate. The diffractive features, for example, may be etched into the substrate 1004 comprising polymer on one or both sides of the substrate. The substrate may, for example, comprise polymer and the diffractive grating may be formed in the polymer substrate by etching or patterning the surface of the substrate.
Accordingly, in some implementations, the substrate and/or the waveguide may comprise a material having an index of 1.4-2.7, depending, for example on the material. For example, the substrate may be an inorganic material, such as SiO2, LiNbO3, LiTaO3, SiC, or other inorganic material or a glass substrate with but not limited to the following materials: SiO2, TiO2, B2O3, Li2O, La2O3, ZrO2, ZnO, Si3N4, or other glass material. The substrate may thus have different refractive indices depending on the design. In some implementations, the substrate comprises polymer, which may have low refractive index (e.g., 1.6 or less) or have high refractive index (e.g., greater than 1.6). For example, the substrate and/or waveguide may comprise an organic polymer, such as a low index (such as less than 1.6 index) or high index organic resin (more than 1.6 index). Low index organic polymers may, for example, be used that have indices from 1.5˜1.6 such as PC, PMMA, PVA, etc. or acrylate containing resin, which can be cross-linked upon UV and/or Heat curing may be employed. Some example high index organic polymers can have Sulphur and/or aromatic groups in the acrylate crosslinking molecule.
Accordingly, as described above, in various implementations described herein, the diffraction gratings 1008 and the substrate 1004 or waveguide both comprise the same material, e.g., polymer. In some implementations, the diffraction gratings 1008 are patterned directly into the substrate 1004, such that the diffraction gratings 1008 and the substrate 1004 form a single piece or a monolithic structure. For example, the substrate 1004 may comprise a waveguide having the diffraction grating 1008 formed directly in the surface of the waveguide or substrate. In these implementations, a bulk polymer material may be patterned at the surface 1004S to form the diffraction gratings 1008, while the polymer material below the diffraction gratings 1008 may form a waveguide. Other materials may be used as the substrate as discussed above and may be patterned to form diffractive features therein. First and second layers of material, such as a first layer that increases the diffraction efficiency for a first polarization and a second layer that increases the diffraction efficiency of a second polarization different than the first polarization may be deposited over the diffraction grating (e.g., over the diffractive features). As discussed above, the first layer may comprise an optically transmissive or transparent material and may comprise, in some implementations, a non-metallic material such as a dielectric or a semiconductor. The second layer may comprise metal. The combination of such layers may increase the diffraction efficiency for both the first and second polarizations and thus increase the diffraction efficiency for unpolarized light.
In some other implementations, however, diffractive features, such as lines, that form a diffraction grating 1008, 1010 may comprise a material different from that of the substrate. The bulk or substrate 1004 and the surface 1004S patterned to form the diffraction gratings 1008 may thus comprise different material. For example, a polymer may be patterned at the surface region to form the diffraction gratings 1008, while the higher index material may be below the diffraction gratings 1008 that form the substrate 1004. In some implementations, the patternable material from which the base pattern is formed comprises a polymer having a refractive index in the range from 1.4 to 1.95. In some implementations, the substrate comprises high index material having an index of refraction of at least 1.9. The index of refraction, for example, can be at least 2.0, at least 2.1, at least 2.2, or at least 2.3 and may be no more than 2.4, 2.5, 2.6, 2.7, 2.8, or may be in any range formed by any of these values or may be outside these ranges. In some implementations, for example, the substrate comprises Li-based oxide, such as lithium niobate. Other materials having high refractive index may also be used. The substrate may, for example, comprise silicon carbide (SiC) in some implementations. The substrate may, for example, comprise crystalline, cryptocrystalline, or amorphous substrates possibly containing, for example, Ti, Z, Hf, La, Ba, Ca, Si, or O2. The substrate may, for example, comprise high index material such as Li-based oxide (e.g., lithium niobate, LiNbO3), while the diffractive features may be formed from a different material such as polymer formed on the high index substrate. In some implementations, this other material formed on the substrate may have a lower index of refraction, e.g., than the substrate.
First and second layers of material, such as a first layer that increases the diffraction efficiency for a first polarization and a second layer that increases the diffraction efficiency of a second polarization different than the first polarization may be deposited over the diffraction grating. As discussed above, the first layer may comprise an optically transmissive or transparent material and may comprises a non-metallic material such as a dielectric or a semiconductor. The second layer may comprise metal. The combination of such layers may increase the diffraction efficiency for both the first and second polarizations and thus increase the diffraction efficiency for unpolarized light.
Referring to
The diffraction gratings 1008 may have a pitch of 200 nm to 300 nm, or 300 nm to 400 nm, 400 nm to 550 nm, or a pitch in any range defined by any of these values, according to various embodiments. Other pitches are also possible.
The diffraction gratings 1008 may have blaze angles of about 20 to 70 degrees (shallow size) or 20 to 85 degrees and anti-blaze angles (steep side) of 70 to 150 degrees or any value in a range defined by these values, measured in the same angular direction.
Values outside these any of these ranges are also possible.
In some examples, an asymmetric geometric form may include a profile, wherein a first sidewall forms an angle with the substrate between 20 and 85 degrees. In some examples, a second sidewall forms an angle different from the first sidewall. In some examples, it may be advantageous for a second sidewall to form an angle with the substrate of 90 degrees or greater, so that during approximately straight deposition (such as illustrated in
The diffraction gratings may be one-dimensional (1D) gratings or two-dimensional (2D) gratings. For example, as illustrated in
In another example, the diffraction grating can include a 2D array of grating features such as a 2D array of protrusions or high points or regions and pits, gaps or low areas between the high points, regions or protrusions. The 2D array, may for example look like a checker-board pattern in some cases. Any of the 1D array of structures described herein can also be arranged in two directions forming a 2D array of diffractive features. The 2D array of diffractive features can include a plurality of undulations in two directions. In some instances, the undulations can be periodic, while in other instances, the pitch of the undulations can vary.
Accordingly, in various implementations, a 2D array of symmetric or asymmetric diffraction features can provide blazed diffraction gratings. As discussed above, the shape (e.g., tilt angles of sidewalls) of the diffraction features can determine the direction the grating directs the light or preferentially directs light. For example, the gratings may direct more light toward other gratings (e.g., EPEs, OPEs, or CPEs) and/or toward the viewer. In some instances, the diffraction features can be faceted to bias the propagation of light in two or more directions (e.g., blazed in multiple directions). For example,
Accordingly, any of the structures or devices described herein such as grating structures may comprise a 1D grating. Similarly, any of the structures or devices described herein such as grating structures may comprise a 2D grating. Such 2D gratings may spread the light. These grating may also comprises blazed gratings. Such blazed gratings may preferentially direct light in certain directions. In some implementations, the 2D gratings (e.g., having one tilted facet on the diffractive features) preferentially direct light in one direction while in others the 2D grating (e.g., having two tilted facets on the diffractive features differently) preferentially directs light into a plurality of directions. Likewise, any of the methods or processes described herein can be used for 1D gratings. Similarly, any of the methods or processes described herein can be used for 2D gratings. These gratings, 1D or 2D, may be included on a substrate and/or waveguide and may be included in an eyepiece and possibly integrated into a head-mounted display as disclosed herein. These gratings may be employed for example as input gratings (e.g., ICGs), output gratings (EPEs), light distribution gratings (OPEs) or combined light distribution gratings/output gratings (e.g., CPEs).
A pattern of a diffraction grating may be formed in a substrate, which may include a waveguide. In some implementations, the patternable material comprises polymer. The pattern may, for example, be formed using photolithography where a patternable material, such as photoresist, may be deposited onto a substrate, which may comprise a waveguide. The patternable material/photoresist may be patterned so as to have a geometric form, such as illustrated in
The patternable material, e.g., polymer, photoresist, etc., can be an imprint with a residual interconnecting layer thickness (RLT) or without an RLT, or the polymer or resist pattern may be a photolithography pattern with or without RLT. A monolithic polymer substrate may have a surface relief pattern defined on one or either side of the waveguide. The pattern (e.g., plurality of diffractive features) can additionally or alternatively be etched into a substrate (e.g., having an index 1.45-2.0), for example, once a pattern is imprinted or otherwise formed onto the substrate.
In various implementations, the patterned material (e.g., polymer or photoresist) and the substrate may be etched to form a pattern, such as those described with reference to
In some other implementations, a patternable material is etched to form diffraction features of patternable material. In such implementations, the diffractive feature comprising patternable material remains on the substrate, which need not be patterned.
In various implementations, the resultant diffractive features may be blazed in two or more directions (e.g., as shown in
Additionally, although the example methods 3800, 3850, 3900 are illustrated to form a 2D array of asymmetric diffractive features, the methods can also be used to form a 2D array of symmetric diffractive features (with or without angled sidewalls). The methods can also be used to form a 1D array of diffractive features. In some instances, the diffractive features in the 1D array can be symmetric with or without angled sidewalls. In some instances, the diffractive features in the 1D array can be asymmetric, e.g., with angled sidewalls. Accordingly, in some cases, blazed diffractive features may be formed.
One or more transmissive layers may be placed onto the base pattern. For example, as illustrated in
Conformal deposition (1402A, 1402B, 1402C) can include a variety of deposition techniques for depositing a material 1412 that may result in a material layer covering the various surfaces of an underlying feature. The deposited layer may potentially be of substantially equal thickness over the base pattern geometry 1410. In some examples, directional deposition may include straight deposition (1404A, 1404B, 1404C) such that deposited material 1412 is incident on the base pattern 1410 at a substantially orthogonal angle to the plane or horizontal direction or planar major surface of the substrate. In another example, directional deposition may include angled deposition (1406A, 1406B, 1406C) such that deposited material 1412 is incident on the base pattern 1410 at an angle 1414 with respect to the plane or horizontal direction or planar major surface of the substrate. For example, the angle 1414 may be selected based on pattern geometry. For example, a diffraction grating may be a blazed diffraction grating having a sawtooth structure. The angle 1414 may be substantially orthogonal with respect to a surface of the sawtooth structure such that a deposited material 1412 more substantially deposits on a portion (or specific sidewall) of the sawtooth structure, as illustrated in 1406A, 1406B, 1406C.
The deposition type and the base pattern geometry may affect the thickness and placement of the layer of a deposited material 1412. Advantageously, controlling the thickness and placement of the layer of deposited material 1412 to generate a biased or angled deposition profile can allow for greater control for launching light in certain directions off of the ICG. As illustrated in
The optically transmissive or transparent layer(s) can include an optically transmissive material that may improve diffraction efficiency for a polarization, such as S-Pol or TE polarized light. In some implementations, the transmissive layer is not metal. In some implementations, for example, the transmissive layer is a dielectric or semiconductor. In some examples, the transmissive layer(s) can be a high index dielectric, such as titanium dioxide (TiO2), zirconium dioxide (ZrO2), Si3N4, ZnO, SiC, ZnTe, GaP, BP, or other material. In some examples, the high index material 1502 may have an index of between 1.9 and 3.5. The transmissive material may have an index of refraction greater than or equal to 2, such as 2.2, 3, 3.5, 4.0, or other high refractive index or be in any range formed by these values. In some examples, the material be a high index material (for example, where n is greater than 2) with a low a k (for example, where k is lower than 0.05), such as silicon carbide (SiC).
In some examples, the transmissive layer(s) can comprise multiple sublayers. For example, the sublayers can include two alternating materials.
In examples where the sublayers include alternating materials, the transmissive layer(s) can include alternating sublayers of high index material 1502 and low index material 1504. For example, the high index material 1502 can include a material having a refractive index greater than or equal to 1.9 or 2, such as TiO2, which has an index of 2.2 or Si3N4, ZnO, ZrO2. TiO2, SiC, ZnTe, GaP, or BP. In some examples, the high index material 1502 may have an index of between 1.9 and 3.5. Additionally, in some designs, the low index material 1504 can include a material having a refractive index lower than or equal to 1.9 or 2, such as less than 1.6, which may include SiO2, which has an index of 1.45. In some examples, the alternating layers can include a first layer of high index material 1502, a second layer of low index material 1504, and a third layer of high index material 1504.
In some implementations, a thickness of one or more of the sublayers in the composite layer may be varied to achieve desired reflectivity in certain wavelengths of light. For example, the transmissive layer(s) can include thin layer(s) of high index material and thicker layer(s) of low index material. The thickness of the one or more sublayers within the transmissive layer(s), such as a layer of low index material, can be tuned to increase the reflectivity of the transmissive layer(s) at certain wavelengths. For example, the thickness of one or both sublayers may be λ/4 times the index of refraction of the material, where λ corresponds to a wavelength or range of wavelengths having increased reflectivity or other design wavelength. Graph 1501 of
In the example shown in
As discussed above, one or more metal layers may be disposed over the transmissive layer(s). For example, as illustrated in
Conformal deposition (1602A, 1602B, 1602C) can include a variety of deposition techniques for depositing a material 1612 that may result in a material layer covering the different sides and portions of the transmissive layer disposed onto the base pattern geometry 1410. In some examples, directional deposition may include straight deposition (1604A, 1604B, 1604C) such that deposited material 1610 is incident on the transmissive layer material 1412 at a substantially orthogonal angle to the plane or horizontal direction or major planar surface of the substrate. In another example, directional deposition may include angled deposition (1606A, 1606B, 1606C) such that deposited material 1610 is incident on the transmissive layer material 1412 at an angle 1616 with respect to the plane or horizontal direction or a major planar surface of the substrate. For example, the angle 1616 may be selected based on pattern geometry. For example, a diffraction grating may be a blazed diffraction grating having a sawtooth structure. The direction may be substantially orthogonal with respect to a surface of the sawtooth structure such that a deposited material 1610 more substantially deposits on a portion (or specific sidewall) of the sawtooth structure, as illustrated in 1605A, 1606B, 1606C.
The deposition type and the base pattern geometry may affect the thickness and placement of the layer of a deposited material 1612. As discussed above with reference to
The metal layer can include a metal or conductive material, such as a material comprising aluminum, silver, gold, copper, or alloy of the same. In some designs, the metal used in the metal layer can be chosen to quench certain wavelengths of light. For example, gold or copper can be used to quench light under 600 nm.
While the transmissive layer is discussed as being the first layer on the base pattern and the metal layer is discussed as being the second layer, the layers may be placed in any suitable order. Additionally or alternatively, there may be one or more additional layers of material in between the base pattern, transmissive layer, or metal layer. In some examples, the one or more layers may repeat or alternate. In some examples, one or more layers may be partial layers such that material that may be part of a layer is deposited on a portion of a substrate or base pattern.
In some examples, there may be an interface layer between the metal layer and the transmissive layer. The interface layer may increase the adhesion strength of the metal layer and environmental reliability of the stack. For example, without an interface layer, the metal layer, such as Ag, Au, Cu, or Al metal, may flake off the grating during unfavorable environmental conditions, such as heat and humidity. In some examples, the interface layer can include TiO2 or other layer that may help bond the metal layer to a polymer surface.
The deposition of the transmissive layer, metal layer, or any other layer can include physical vapor deposition (PVD). PVD can include sputtering, evaporation, or other forms of physical vapor deposition. In examples where conformal deposition is desired, sputtering may be used. In examples where directional deposition is desired, evaporation may be used. Additionally or alternatively, the deposition of the transmissive layer, metal layer, or any other layer can include chemical vapor deposition (CVD). CVD can include plasma enhanced low pressure deposition, atmospheric pressure, deposition, atomic layer deposition (ALD), or other form of chemical vapor deposition. Forms of CVD may be used where conformal deposition is desired. Aspects of PVD or CVD may be varied to affect the physical properties of the deposited layers. For example, deposition thickness bias may be lessened for very conformal processes, such as those done one on an atomic scale one monolayer at a time. In another example, coating quality (for example, in terms of grain size or density) can be affected by changes to processing temperature and pressure. The coating quality can in turn affect the n & k of the layer and shape adjacent layers being coated on top of the deposited layer.
A diffraction grating having reduced polarization sensitivity, such as described above, can be used in the context of an AR display. For example, a waveguide that may be part of an AR display can include diffraction gratings that may serve as in-coupling optical elements and/or light distributing elements and/or out-coupling optical elements on one or more sides of a waveguide (such as those described with reference to
The reflective ICG 1712 or transmissive ICG 1714 may comprise a diffraction grating. The diffraction grating of both or either the reflective ICG 1712 or transmissive ICG 1714 may be formed in a layer on the waveguide or substrate or within the waveguide itself. The diffraction grating may have diffractive features, such as for example described above with reference to
In some examples, a geometric form of diffractive features of the reflective ICG 1712 and/or transmissive ICG 1714 can be symmetric with straight sidewalls, sloped sidewalls, re-entrant or concave sidewalls, multi-step sidewalls (see, e.g.,
The reflective ICG 1712 can include one or more transmissive layers 1713 and/or one or more metal layers 1711. The metal layer 1711 may be reflective. In some examples, the one or more transmissive layers 1713 may be efficient in diffracting TE polarized light in one or more wavelength ranges. For example, the one or more transmissive layers may be efficient in diffracting TE polarized light in a range of wavelengths associated with red (for example, around 620-780 nm), a range of wavelengths associated with green (for around 492-577 nm), or a range of wavelengths associated with blue (for example, 435-493 nm). In some examples, the one or more metal layers 1711 may be efficient in diffracting TM polarized light in one or more wavelength ranges. For example, the one or more metal layers may be efficient in diffracting TM polarized light in a range of wavelengths associated with red (for example, around 620-780 nm), a range of wavelengths associated with green (for around 492-577 nm), or a range of wavelengths associated with blue (for example, 435-493 nm). The transmissive ICG 1714 can include one or more transmissive layers 1715, such as described above with reference to
Light received from a projector, such as an image projector, may be diffracted by the one or more gratings 1712, 1714 at an angle or range of angles such that this light or at least a portion thereof is guided within the waveguide by total internal reflection, for example, toward the pupil expander-extractor gratings. The geometry, for example, the asymmetry or blazed of the diffractive feature, may cause light to be preferentially directed, for example, toward pupil expander-extractor gratings. The pupil expander-extractor gratings may be configured to out-couple the light form the waveguide to the user or wearer's eye. The pupil expander-extractor gratings may additionally increase the area (in two dimensions) over which the light exits the waveguides. In this manner, the pupil expander-extractor gratings may potentially increase the eye box in some implementations. In various designs, the projector outputs unpolarized or circularly polarized light and directs this unpolarized or circularly light to the ICGs for input into the waveguide. Some examples of such projectors that output unpolarized or circularly light to form images may include for example micro-LED projectors, digital light projectors (DLP), and liquid crystal on silicon (LCOS) based projectors, although others are possible.
A transmissive ICG 1714 and/or ICG 1717 may comprise a diffraction grating. The diffraction grating of both or either the reflective ICG 1717 or transmissive ICG 1714 may be formed in a layer on the waveguide or within the waveguide or substrate itself. The diffraction grating may have diffractive features, such as described above with reference to
In some examples, a geometric form of diffractive features of a transmissive ICG 1714 and/or reflective ICG 1717 can be symmetric with straight sidewalls, sloped sidewalls, re-entrant or concave sidewalls, multi-step sidewalls, other type of sidewalls, or some combination thereof. In another example, the geometric form can be asymmetric with at least one straight sidewall, sloped sidewall, re-entrant or concave sidewall, multi-step sidewall, other type of sidewall, or some combination thereof. Regardless of whether the diffraction features are asymmetric or symmetric, in some implementations, a plateau or flat portion may be located at the top of the features (e.g. at the peak). A grating may have a height and/or depth of 100 nm to 600 nm or greater or less height than defined by that range (e.g., 200 to 400 nm, 205 to 350 nm, 210 to 400 nm, 350 to 500 nm, 300 to 600 nm, 400 to 600 nm, 200 to 600 nm, 200 to 500 nm or any range formed by any of these values). A grating may have a pitch of 290 nm to 690 nm or greater or less pitch than defined by that range. If the grating is a blazed grating, the grating may have, for example, a blaze angle of about 20 to 85 degrees and an anti-blaze angle of, for example, about 70 to 150 degrees or any value in a range defined by these values, measured in the same angular direction. These angles may represent interior angles measured from the base of the diffraction grating to the corresponding sidewall or surface. Values outside these any of these ranges are also possible.
The transmissive ICG 1714 can include one or more transmissive layers 1715, such as described above with reference to
Advantageously, the combination of the transmissive ICG which preferentially diffracts TE light into the waveguide to be guided therein and the reflective ICG which preferentially diffract TM light into the waveguide to be guided therein provide for efficient diffraction and in-coupling of both TE and TM polarization. Accordingly, this combination of these gratings can more efficiently diffract light including both TE and TM polarizations, such as unpolarized light, and in the case of ICGs, couple this light into a waveguide. As described above, in various designs, the diffractive light is in the first order such as the +1 and/or −1 diffractive order.
Accordingly, light received from a projector, such as an image projector, may be diffracted by the one or more gratings 1717, 1714 such that an angle or range of angles of this light from the projector or at least a portion thereof is diffracted and coupled into and guided within the waveguide by total internal reflection, for example, toward the pupil expander-extractor gratings, light distributing element(s) and/or outcoupling optical element(s). The geometry, for example, the asymmetry or blazed of the diffractive feature may cause light to be preferentially directed, for example, in a particular direction such as toward pupil expander-extractor gratings. The pupil expander-extractor gratings may be configured to out-couple the light form the waveguide to the user or wearer's eye. The pupil expander-extractor gratings may in addition increase the area (in two dimensions) over which the light exits the waveguides. In this manner, the pupil expander-extractor gratings may potentially increase the eye box in some implementations. In various implementations, the projector outputs unpolarized or circularly polarized light and directs this unpolarized or circularly light to the ICGs for input into the waveguide. Some examples of such projectors or light sources that output unpolarized or circularly light to form images may include, for example, micro-LEDs and micro-LED projectors, digital light projectors (DLP), and liquid crystal on silicon (LCOS) based projectors, although others are possible.
The transmissive ICG 1730 may comprise a diffraction grating. The diffraction grating of the transmissive ICG 1730 may be formed in a layer on the waveguide or substrate or in the waveguide or substrate itself, for example, on a surface thereof. The diffraction grating may have diffractive features, such as described above with reference to
Light received from a projector (e.g., comprising micro-LEDs), such as an image projector, may be diffracted by the one or more gratings 1730 and directed at an angle or range of angles such that this light or at least a portion thereof is guided within the waveguide by total internal reflection toward the pupil expander-extractor gratings. The geometry, for example, the asymmetry or blaze of the diffractive feature may cause light to be preferentially directed, for example, toward pupil expander-extractor gratings. The pupil expander-extractor gratings may be configured to out-couple the light from the waveguide to the user or wearer's eye. The pupil expander-extractor gratings may additionally increase the area (in two dimensions) over which the light exits the waveguides. In this manner, the pupil expander-extractor gratings may potentially increase the eye box in some implementations. In various implementations, the projector outputs unpolarized or circularly polarized light and directs this unpolarized or circularly light to the ICGs for input into the waveguide. Some examples of such projects the output unpolarized or circularly light to form images may include for example micro-LED projectors, digital light projectors (DLP), and liquid crystal on silicon (LCOS) based projectors, although others are possible.
The transmissive ICG 1730 can include a high index grating configured to be efficient in both TM and TE. For example, the ICG 1730 can have an improved ICG profile and/or material composition to get polarization insensitive and efficient diffraction of light over a range of input angles of light. For example, an ICG 1730 may have a diffraction efficiency in the range of 40 to 90 percent (e.g. 50% to 60%, 60% to 70%, 70% to 80%, 80% to 90% or any range between any of these values) or more for the TE mode and 40 to 90 percent (e.g. 50 to 60%, 60 to 70%, 70 to 80%, 80 to 90% or any range between any of these values) or more for the TM mode. In some examples, the ICG 1730 may have a similar efficiency in TE mode and TM mode. For example, the ICG 1730 may have a TM mode efficiency within 5%, 10%, 20%, 25%, 30%, of TE mode efficiency (or in any range between any of these values). Or the ICG 1730 may have a TE mode diffraction efficiency within 5%, 10%, 20%, 25%, 30%, of TM mode efficiency (or in any range between any of these values). Accordingly, in various implementations, the different in diffraction efficiency of the diffraction efficiency for the TE and TM modes may be 5%, 10%, 20%, 25%, 30%, of TE mode efficiency (or in any range between any of these values). Other examples are also possible. These efficiencies may be average efficiencies over a range of angles (e.g., 5 degrees, 10 degrees, 20 degrees, 30 degrees, 40 degrees, 50 degrees or any range between any of these values). Similarly, these efficiencies may be an possibly averaged over wavelengths, e.g., of visible spectrum light or the wavelength or wavelengths for specific colors, e.g., red, blue or green. For example, the wavelength output by the light sources in the project which may include multiple colored light sources may be considered. As described above, the diffraction may be in a certain diffraction mode or modes such as the first order mode such as the +1 and/or −1 diffractive order.
Grating 1742 illustrated in
The TM and TE diffraction efficiency profiles (1750, 1752 respectively) associated with a grating 1742, may approximately match over a range of angles of incidence and/or may be more efficient in TE and more efficient in TM at points within a range of the angles of incidence, such as illustrated in graph 1743. In some examples, the average diffraction efficiency may be from 40% to 60% or 0.4 to 0.6 or may be at least 0.45, or 0.5, or 0.6 or 0.7 or 0.8 or 0.9 or 0.95 or 0.99 (e.g., have an average efficiency of at least 45%, 50%, 55%, 60%, 65%, 70% 80%, 90%, 95% or 99% or in any range formed by any of these values) over a range of angles of incidence such as between −10 degrees and 10 degrees or over wider or smaller ranges (e.g., at least 6 degrees, at least 10 degrees, 20 degrees, 25 degree, 30 degree, 35 degrees, 40 degrees or any range between any of these values). In some examples, the diffraction efficiencies are on average at least 0.4 (or at least 0.45 or at least 0.50, or at least 0.55, or at least 0.6 or at least 0.65 or at least 0.7 or at least 0.8 or at least 0.9) for a range of angles of incident light of at least 30 degrees or other angular ranges (e.g., at least 3 degrees, at least 6 degrees, at least 10 degrees, at least 12 degrees, at least 18 degrees, at least 20 degrees, 25 degree, 30 degree, 35 degrees, 40 degrees or any range between any of these values). In some examples, the diffraction efficiencies are on average at least 0.4 or 0.5 or 0.6 or 0.7 or 0.8 or 0.9 for a range of angles of incident light of at least 20 degrees. In some examples, the diffraction efficiencies are on average at least 0.4 or 0.5 or 0.6 or 0.7 or 0.8 or 0.9 for a range of angles of incident light of at least 10 degrees. In some examples, the diffraction efficiencies are at least 0.4 or 0.5 or 0.6 or 0.7 or 0.8 for a range of angles of incident light of at least 30 degrees. In some examples, the diffraction efficiencies are at least 0.4 or 0.5 or 0.6 or 0.7 or 0.8 for a range of angles of incident light of at least 20 degrees. In some examples, the diffraction efficiencies are at least 0.4 or 0.5 or 0.6 or 0.7 or 0.8 for a range of angles of incident light of at least 10 degrees. The diffraction efficiencies may be in any range between any of these values for any of these angular ranges or possibly for other larger angular ranges as well. Similarly, as described above, the average diffraction efficiencies over the range of wavelengths may be within 30%, 25%, 20%, 15%, 10%, 5%, 2.5%, 1% or in any range formed by any of these values for a range of angles such as 3°, 6°, 12°, 18°, 20°, 25°, 30°, 35°, 40° or any range formed by any of these values. The diffraction efficiency may be higher for the TE mode in some designs or may be higher for the TM mode in some designs. In some designs, the diffraction efficiency may be higher at some angles for the TE mode and at other angles for the TM mode.
Average diffraction efficiency may be increased using a higher index material (for example, a material having an index greater than 2), such as illustrated in grating 1744 of
Similar to grating 1742, the grating 1744 as illustrated in
However, contact imprint as a mode of manufacture can be advantageous over etching due to improved efficiency and eased manufacturing. Thus, it may be desirable to use a material that is suitable for use with a contact imprint technique to generate the ICG. For example, gratings 1746 and 1748 include an ICG profile with an index of 1.65.
Grating 1746 includes a slanted grating with a material having an index of less than 2, or less than 1.9 or 1.8, for example 1.65, and a coating deposited on an edge of the grating with a material having an index greater than 1.9 or greater than 2, such as a material with an index of 2.2, such as TiO2, or a material with an index of 2.6, such as SiC. The resulting TM and TE efficiency profiles (1750, 1752 respectively), are close or approximately match over a range of angles of incidence and/or may be more efficient in TE and more efficient in TM at points or on average within a range of the angles of incidence, such as illustrated in graph 1745. In some examples, an average polarization efficiency may have a peak between approximately 80% and 100% or 0.8 and 0.1 over a range of angles of incidence between −10 degrees and 10 degrees. In some examples, the diffraction efficiencies are on average at least 0.8 for a range of angles of incident light of at least 30 degrees. In some examples, the diffraction efficiencies are on average at least 0.8 for a range of angles of incident light of at least 20 degrees. In some examples, the diffraction efficiencies are on average at least 0.8 for a range of angles of incident light of at least 10 degrees. In some examples, the diffraction efficiencies are at least 0.8 for a range of angles of incident light of at least 30 degrees. In some examples, the diffraction efficiencies are at least 0.8 for a range of angles of incident light of at least 20 degrees. In some examples, the diffraction efficiencies are at least 0.8 for a range of angles of incident light of at least 10 degrees.
In some examples, the average diffraction efficiencies are on average at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 3, 6, 10, 12, 18, 20, 30, 40, 50, or 60 degrees or any range formed by any of these values. In some examples, the diffraction efficiencies are on average at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 40 degrees. In some examples, the diffraction efficiencies are on average at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 30 degrees. In some examples, the diffraction efficiencies are on average at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 20 degrees. In some examples, the diffraction efficiencies are on average at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 10 degrees. In some examples, the diffraction efficiencies are at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 30 degrees. In some examples, the diffraction efficiencies are at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 20 degrees. In some examples, the diffraction efficiencies are at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 10 degrees.
Grating 1748 also includes a blazed grating having an index of less than 2 or less than 1.9 or 1.8, for example 1.65, and a coating deposited on an edge of the grating with a material having an index greater than 1.9 or 2, such as a material with an index of 2.2, such as TiO2, or a material with an index of 2.6, such as SiC. The resulting TM and TE efficiency profiles (1750, 1752 respectively), are close or approximately match over a range of angles of incidence and/or may be more efficient in TE and more efficient in TM at points within a range of the angles of incidence, such as illustrated in graph 1747. In some examples, an average polarization efficiency may have a peak between approximately 80% and 100% or 0.8 and 0.1 over a range of angles of incidence between −10 degrees and 10 degrees. In some examples, the diffraction efficiencies are on average at least 0.8 for a range of angles of incident light of at least 30 degrees. In some examples, the diffraction efficiencies are on average at least 0.8 for a range of angles of incident light of at least 20 degrees. In some examples, the diffraction efficiencies are on average at least 0.8 for a range of angles of incident light of at least 10 degrees. In some examples, the diffraction efficiencies are at least 0.8 for a range of angles of incident light of at least 30 degrees. In some examples, the diffraction efficiencies are at least 0.8 for a range of angles of incident light of at least 20 degrees. In some examples, the diffraction efficiencies are at least 0.8 for a range of angles of incident light of at least 10 degrees.
In some examples, the average diffraction efficiencies are on average at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 3, 6, 10, 12, 18, 20, 30, 40, 50, or 60 degrees or any range formed by any of these values. In some examples, the diffraction efficiencies are on average at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 40 degrees. In some examples, the diffraction efficiencies are on average at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 30 degrees. In some examples, the diffraction efficiencies are on average at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 20 degrees. In some examples, the diffraction efficiencies are on average at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 10 degrees. In some examples, the diffraction efficiencies are at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 30 degrees. In some examples, the diffraction efficiencies are at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 20 degrees. In some examples, the diffraction efficiencies are at least 0.5 or 0.6, or 0.7 or 0.8 or 0.9 or 0.95 or any range formed by any of these values for a range of angles of incident light of at least 10 degrees.
Additionally, as described above, the average diffraction efficiencies over the range of wavelengths may be within 30%, 25%, 20%, 15%, 10%, 5%, 2.5%, 1% or in any range formed by any of these values for a range of angles such as 3°, 6°, 12°, 18°, 20°, 25°, 30°, 35°, 40° or any range formed by any of these values. The diffraction efficiency may be higher for the TE mode in some designs or may be higher for the TM mode in some designs. In some designs, the diffraction efficiency may be higher at some angles for the TE mode and at other angles for the TM mode. An ICG, such as grating 1746 or grating 1748, as illustrated in
Also as described above a variety of methods may be employed to fabricate the diffractive feature. In some implementations, imprinting may be cost-effectively employed to form the diffractive features, possibly from a layer of polymer disposed on the substrate. An imprint template may contact the polymer layer, which in some cases may be cured with UV and/or thermal curing. Some example methods of etching are also described in connection with
Additionally, high index material deposited on the diffractive grating features may be biased e.g., using glazing incidence deposition, to provide more of the material on one side of the diffractive grating features than the other side. Accordingly, the thickness and/or coverage may be larger on a first sidewall on one side of the diffractive feature than on a second sidewall on the opposite side of the diffractive features. In some implementations, there is possibly little coverage on one side wall. For example, 90% or 95% of the second sidewall may not be covered. In some cases deposition (e.g., directional deposition) on a tilted diffractive feature may result in such biasing as more coverage or thicker coverage is provided on a first sidewall or side of the diffractive feature while less is deposited on the second sidewall or side of the diffractive feature. In some cases, the topography of the underlying diffractive feature may facilitate passive biased deposition as illustrated in
In reference to grating 1746, a duty cycle 1778 of the grating 1746 may be a percent of the pitch of the grating. For example, the duty cycle may be between 20 and 80 percent of the pitch, for example 50 percent of the pitch. A height 1774 of the grating may be, for example, a height of 10 to 600 nm. In some examples, a grating 1746 may be disposed on a substrate on a waveguide or part of a waveguide itself. In some examples, a substrate may be a material having an index of 1.75. In some examples, grating features may comprise a material with an index of refraction different than the index of the substrate or waveguide. In the illustrated example, grating 1746 comprises diffractive features 1770 having an index of 1.65 on a substrate having an index of 1.75. Values outside these ranges are also possible. In some examples, a material 1772 may be deposited onto the diffractive features 1770. The material 1772 may be of a higher index of refraction than the diffractive features 1770. For example, the material 1772 may have an index of refraction of 2.2. Other values are also possible. A thickness 1776 of the material 1772 may be about 10 to 600 nm or another value.
In reference to grating 1748, a width at the top (WT) of the blazed grating feature 1780 may be larger than the width at the base (WB) of the blazed grating 1784. In some examples, WT may be varied and may be zero. In some examples, WB may be varied. For examples, WB may be of sufficient width to allow for at least partial filling of the bottom width by a high index coating. For example, a WB may be of sufficient width to allow more than 50% of the width to be filled by the high index coating. In some examples, the high index coating may be applied with a biased deposition such that the coating is preferentially deposited on a first sidewall over a second sidewall (e.g., reentrant sidewall, vertical sidewall or even sloping sidewall). Advantageously, in some cases this biased deposition may improve overall average TM and TE efficiency.
A height 1782 of the grating may be, for example, a height of 100 to 600 nm. In some examples, a grating 1748 may be disposed on a substrate on a waveguide or part of a waveguide itself. In some examples, a substrate may be a material having an index of 1.75. In some examples, grating features may comprise a material with an index of refraction different than the index of the substrate or waveguide. In the illustrated example, grating 1746 comprises diffractive features 1770 having an index of 1.65 on a substrate having an index of 1.75. Values outside these ranges are also possible. In some examples, a material 1772 may be deposited onto the diffractive features 1770. The material 1772 may be of a higher index of refraction than the diffractive features 1770. For example, the material 1772 may have an index of refraction of 2.2. Other values are also possible. A thickness 1786 of the material 1772 may be about 100 to 600 nm or another value. Other values outside these ranges are also possible.
As discussed above, in some examples, the grating 1744 may be generated using a high index resist and a contact imprint. In some examples, the grating 1744 may be generated using slanted etching. Other types of gratings with other material compositions having other indices are also possible.
Advantageously, a grating, such as a blazed grating with an index coating of 2.2, such as discussed with reference to grating 1748, may have improved average diffraction efficiency, and polarization insensitivity, and possibly a higher manufacturability than other designs. Advantageously, an ICG, such as described with reference to
Similar to the waveguide show in
Reflection loss could be reduced in the first ICG 1714 if the transmissive layer 1822 comprises one or more sublayers 1824, 1826 such as discussed above. For example, as illustrated in
Additionally or alternatively, reflection loss could be reduced by including a material 1828 that has an index of refraction between that of air and the one or more transmissive layers 1822 of the first ICG 1714. For example, as illustrated in
A head-mounted display system comprising:
a head-mountable frame;
a light projection system configured to output light to provide image content;
a waveguide supported by the frame, the waveguide comprising a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide;
a first diffraction grating comprising material different than said substrate over said substrate;
a first layer disposed over said first diffraction grating; and
a second layer comprising metal disposed over said first diffraction grating such that said diffraction grating has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon and a second diffraction efficiency for a second polarization over the range of angles of light incident thereon, the first diffraction efficiency being from 1 to 2 times the second diffraction efficiency.
The head-mounted display system of Example 1, wherein the substrate comprises a lithium-based oxide.
The head-mounted display system of Example 1 or 2, wherein the substrate comprises lithium niobate.
The head-mounted display system of Example 1, wherein the substrate comprises silicon carbide.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 1.9.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.0.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.1.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.2.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.3.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises polymer.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises imprintable material.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material has a refractive index of 1.4 to 1.95.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material has a refractive index that is lower than said substrate.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises a blazed diffractive grating.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises diffractive features comprising peaks spaced apart by grooves therebetween.
The head-mounted display system of any of the Examples above, wherein the said first diffraction grating comprises diffractive features comprising a plurality of straight lines.
The waveguide of any of the Examples above, wherein said diffractive grating comprises diffractive features that are asymmetric.
The head-mounted display system of any of the Examples above, wherein the first layer comprises titanium dioxide (TiO2), zirconium dioxide (ZrO2) or silicon carbide (SiC).
The head-mounted display system of any of the Examples above, wherein the first layer comprises titanium dioxide (TiO2).
The head-mounted display system of any of the Examples above, wherein the first layer comprises zirconium dioxide (ZrO2).
The head-mounted display system of any of the Examples above, wherein the first layer comprises silicon carbide (SiC).
The head-mounted display system of any of the Examples above, wherein the first layer comprises a plurality of sublayers comprising a first higher index material and a second lower index material.
The head-mounted display system of Example 22, wherein the first higher index material comprises titanium dioxide (TiO2) and a second lower index material comprises silicon dioxide (SiO2).
The head-mounted display system of Example 22 or 23, wherein the plurality of sublayers comprising only two sublayers.
The head-mounted display system of Example 22 or 23, wherein the plurality of sublayers comprising at least four sublayers.
The head-mounted display system of any of Examples 22-25, wherein the plurality of sublayers alternate between the first material and the second material.
The head-mounted display system of any of Examples 22-26, wherein the plurality of sublayers comprises an interference coating.
The head-mounted display system of any of Examples 22-27, wherein the plurality of sublayers comprises a quarter wave stack.
The head-mounted display system of any of the Examples above, wherein the metal comprises aluminum, silver, gold, or copper.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarizations having different polarization angles.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarizations oriented in orthogonal directions.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise transverse magnetic and transverse electric polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise transverse electric and transverse magnetic polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.5 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.4 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.3 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.2 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.1 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 6 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 12 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 18 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 22 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±3 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±6 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±9 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±11 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein said waveguide is included in an eyepiece configured to direct light to an eye of a user wearing said head mounted display.
The head-mounted display system of Example 49, wherein said eyepiece is disposed on the frame and is configured to direct light from the light projection system into the eye of the user to display augmented reality image content to the vision field of the user, at least a portion of the eyepiece being transparent and disposed at a location in front of the eye of the user when the user wears the head-mounted display system, where the transparent portion transmits light from a portion of a physical environment in front of the user to the eye of the user to provide a view of the portion of the physical environment in front of the user.
The head-mounted display system of Example 49 or 50, wherein said eyepiece comprises said at least one waveguide and said at least one waveguide is transparent to visible light such that the user can see through the waveguide.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an in-coupling optical element for coupling light from said light projection system into the waveguide to be guided therein.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an out-coupling optical element for coupling light from said light projection system out of the waveguide and directs said light to the user's eye to present said image content to the viewer.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises an out-coupling grating (EPE) configured to out-couple light from said light projection system guided within said waveguide out of said waveguide.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises an in-coupling grating (ICG) configured to in-couple light from said light projection system into said waveguide.
The head-mounted display system of any of the Examples above, wherein the second layer is configured to be disposed over the first layer.
The head-mounted display system of any of the Examples above further comprising a third layer disposed between said first layer and said second layer.
The head-mounted display system of Example 57, wherein the third layer is configured to help bond said second layer to said first layer.
The head-mounted display system of any of the Examples above comprising:
a second diffraction grating comprising material different than said substrate disposed over said substrate; and
a fourth layer disposed over said second diffraction grating such that the second diffraction grating has a third diffraction efficiency for a first polarization over a range of angles of light incident thereon,
wherein the first diffraction grating is disposed over said substrate on a first side of said substrate and the second diffraction grating is disposed over said substrate on a second side of said substrate that opposes said first side of said substrate.
The head-mounted display system of any of the Examples above, wherein the first layer is conformally deposited onto one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the first layer is directionally deposited onto the one or more diffractive features at an angle.
The head-mounted display system of Example 61, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The head-mounted display system of Example 61, wherein the angle is 75 to 105 degrees with respect to a surface of one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the second layer is conformally deposited onto one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the second layer is directionally deposited onto one or more diffractive features of the first diffraction grating at an angle.
The head-mounted display system of Example 65, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The head-mounted display system of Example 65, wherein the angle is 75 to 105 degrees with respect to a surface of one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features formed in a 1D array.
The head-mounted display system of any of Examples 1-68, wherein the first diffraction grating comprises diffractive features formed in a 2D array.
The head-mounted display system of Example 69, wherein the 2D array comprises a square array.
The head-mounted display of any of the Examples above, wherein the diffractive features are asymmetrical so as to provide a blazed grating.
The head-mounted display of any of the Examples above, wherein the diffractive features have material asymmetrically deposited thereon so as to provide for a blazed grating.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is configured to direct light preferentially in at least two directions.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is blazed in two directions.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises a one-dimensional grating.
The head-mounted display system of any of Examples 1-75, wherein the first diffraction grating comprises a two-dimensional grating.
The head-mounted display system of any of the Examples above comprising:
a second diffraction grating comprising material different than said substrate disposed over said substrate; and
a fourth layer disposed over said second diffraction grating such that the second diffraction grating has a third diffraction efficiency for a first polarization over a range of angles of light incident thereon and a fourth diffraction efficiency for a second polarization over the range of angles of light incident thereon,
wherein the first diffraction grating is disposed over said substrate on a first side of said substrate and the second diffraction grating is disposed over said substrate on a second side of said substrate that opposes said first side of said substrate.
The head-mounted display system of any of the Examples above comprising:
a second diffraction grating formed in said substrate; and
a fourth layer disposed over said second diffraction grating such that the second diffraction grating has a third diffraction efficiency for a first polarization over a range of angles of light incident thereon and a fourth diffraction efficiency for a second polarization over the range of angles of light incident thereon,
wherein the first diffraction grating is disposed over said substrate on a first side of said substrate and the second diffraction grating is disposed over said substrate on a second side of said substrate that opposes said first side of said substrate.
The head-mounted display system of any of the Examples above, wherein said substrate is configured to guide at least a portion of the light from said light projection system coupled into said waveguide via said second diffraction grating
The head-mounted display system of any of the Examples above, wherein the third diffraction efficiency for said first polarization over a range of angles of light incident thereon is greater than the fourth diffraction efficiency for said second polarization over a range of angles of light incident thereon.
The head-mounted display system of any of the Examples above, wherein the third diffraction efficiency at least 6 times the fourth diffraction efficiency over said range of angles.
The head-mounted display system of any of the Examples above, wherein the third diffraction efficiency for said first polarization over a range of angles of light incident thereon is less than the fourth diffraction efficiency for said second polarization over a range of angles of light incident thereon.
The head-mounted display system of any of the Examples above, wherein the fourth diffraction efficiency is at least 6 times the third diffraction efficiency over said range of angles.
The head-mounted display system of any of the Examples above, wherein the fourth layer comprise a dielectric.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.6.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.7.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.8.
The head-mounted display system of any of the Examples above, wherein the first layer comprises a dielectric.
The head-mounted display system of any of the Examples above, wherein the first layer comprise material having a refractive of 1.9 or more.
The head-mounted display system of any of the Examples above, wherein the first layer comprise material having a refractive of 2.0 or more.
The head-mounted display system of any of the Examples above, wherein the first layer comprises material having a refractive of 2.1 or more.
The head-mounted display system of any of the Examples above, further comprising a plurality of sublayers over said first layer, said plurality of sublayers comprising a first higher index material and a second lower index material.
The head-mounted display system of Example 92, wherein the first higher index material comprises titanium dioxide (TiO2) and a second lower index material comprises silicon dioxide (SiO2).
The head-mounted display system of Example 92 or 93, wherein the plurality of sublayers comprising only two sublayers.
The head-mounted display system of Example 92 or 93, wherein the plurality of sublayers comprising at least four sublayers.
The head-mounted display system of any of Examples 92-95, wherein the plurality of sublayers alternate between the first material and the second material.
The head-mounted display system of any of Examples 92-96, wherein the plurality of sublayers comprises an interference coating.
The head-mounted display system of any of Examples 92-97, wherein the plurality of sublayers comprises a quarter wave stack.
The head-mounted display system of any of Examples 92-98, wherein the plurality of sublayers over said first layer forms a bandpass filter.
The head-mounted display system of any of Examples 92-98, wherein the plurality of sublayers over said first layer forms a notch filter.
The head-mounted display system of any of Examples 92-98, wherein the plurality of sublayers over said first layer forms an anti-reflection (AR) coating.
The head-mounted display system of any of Examples 92-101, wherein first the lower index material has a refractive index of 1.6 or less.
The head-mounted display system of any of Examples 92-102, wherein the second higher index material has a refractive index of 1.9 or more.
The head-mounted display system of any of the Examples 92-103, wherein the first lower index material comprises silicon dioxide.
The head-mounted display system of any of the Examples 92-104, wherein the second higher index material comprises titanium dioxide.
The head-mounted display system of any of Examples 92-104, wherein the second higher index material comprises zirconium dioxide.
The head-mounted display system of any of Examples 92-104, wherein the second higher index material comprises zinc oxide.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises an average diffraction efficiency for said first polarization over said range of angles and said second diffraction efficiency comprises an average diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 40%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 50%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 60%.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 25 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 35 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 40 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±15 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±18 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±20 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features comprising first and second sidewalls.
The head-mounted display system of Example 119, wherein said first and second sidewalls are separated by a plateau.
The head-mounted display system of Example 119, wherein said first and second sidewalls joint to form salient angle at the top of said diffractive feature.
The head-mounted display system of any of Examples 119-121, wherein at least said first side wall is sloped at an angle such that said first sidewall is less steep than said second sidewall.
The head-mounted display system of any of Examples 119-122, wherein said first sidewall is wider than said second sidewall.
The head-mounted display system of any of the Examples 119-123, wherein said first sidewall forms an angle of from 45° to 85° at said base of said diffractive feature.
The head-mounted display system of any of the Examples 119-124, wherein said second sidewall forms an acute re-entrant angle at the base of said diffractive feature.
The head-mounted display system of any of the Examples 119-125, wherein said first diffraction grating comprises shark-fin shaped diffractive features.
The head-mounted display system of any of the Examples 119-124, wherein said second sidewall forms an obtuse re-entrant angle at the base of said diffractive feature.
The head-mounted display system of any of the Examples 119-124, wherein said second sidewall is vertical.
The head-mounted display system of any of the Examples 119-124 or 127-128, wherein said first diffraction grating comprises sawtooth shaped diffractive features.
The head-mounted display system of any of the Examples above, wherein said first layer comprises a biased deposition.
The head-mounted display system of any of the Examples above, wherein said first layer comprises a glazing angle deposition.
The head-mounted display system of any of Examples 119-131, wherein said first layer is biased to provide more coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 119-132, wherein said first layer covers a greater fraction of said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 119-133, wherein said first layer is biased to provide thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 119-134, wherein said first layer provides on average thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 119-135, wherein said first sidewall is completely covered by said second layer.
The head-mounted display system of any of Examples 119-136, wherein at least a portion of said second sidewall is not covered by said first layer.
The head-mounted display system of any of Examples 119-137, wherein said second sidewall includes more area not covered by said first layer than said first sidewall.
The head-mounted display system of any of Examples 119-138, wherein said second layer comprises a conformal deposition.
The head-mounted display system of any of Examples 119-139, wherein said first and second sidewalls are completely covered by said second layer.
The head-mounted display system of any of Examples 119-140, wherein said second layer is not biased to cover more of said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 119-141, wherein said second layer does not provide thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 119-142, wherein said second layer does not provide on average thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 119-143, wherein said second sidewall is entirely covered by said second layer.
The head-mounted display system of any of Examples 119-144, wherein said second sidewall does not include more area not covered by said second layer than said first sidewall.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is within 20% of said second diffraction efficiency for said second polarization.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is within 30% of said second diffraction efficiency for said second polarization.
The head-mounted display system of any of Examples above, wherein said first diffraction grating with said first and second layers formed thereon comprise a reflective diffraction grating.
The head-mounted display system of any of Examples above, wherein said first diffraction grating with said first and second layers formed thereon comprise a reflective diffraction grating configured to diffract reflected light to couple light into said waveguide to be guided therein by total internal reflection.
The head-mounted display system of any of Examples 1-148, wherein said first diffraction grating with said first and second layers formed thereon comprise a reflective diffraction grating configured to diffract reflected light to couple light be guided within said waveguide by total internal reflection out of said waveguide.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 100 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 200 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 300 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a pitch from 290 nm to 690 nm.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises micro-LEDs.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises a DLP or a LCOS display.
The head-mounted display system of any of the Examples above, wherein said substrate includes nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate includes inorganic nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate comprises polymer.
A head-mounted display system comprising:
a head-mountable frame;
a light projection system configured to output light to provide image content;
a waveguide supported by the frame, the waveguide comprises a substrate comprising optically transparent material and a first diffraction grating formed in said substrate, said substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide via,
a first layer disposed over said first diffraction grating formed in said substrate;
a second layer comprising metal disposed over said first diffraction grating formed in said substrate such that the first diffraction grating has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon and a second diffraction efficiency for a second polarization over the range of angles of light incident thereon, the first diffraction efficiency being from 1 to 2 times the second diffraction efficiency.
The head-mounted display system of Example 1, wherein the optically transparent material comprising the substrate has an index of refraction from 1.45 to 2.0.
The head-mounted display system of Example 1 or 2, wherein the transparent material comprising said substrate comprises polymer.
The head-mounted display system of any of the Examples above, wherein the first layer comprises titanium dioxide (TiO2), zirconium dioxide (ZrO2) or silicon carbide (SiC).
The head-mounted display system of any of the Examples above, wherein the first layer comprises a plurality of sublayers.
The head-mounted display system of Example 5, wherein the first layer comprises a plurality of sublayers comprising a first higher index material and a second lower index material.
The head-mounted display system of Example 5 or 6, wherein the first higher index material comprises titanium dioxide (TiO2) and a second lower index material comprises silicon dioxide (SiO2).
The head-mounted display system of any of Example 5-7, wherein the plurality of sublayers comprising only two sublayers.
The head-mounted display system of any of Example 5-7, wherein the plurality of sublayers comprising at least four sublayers.
The head-mounted display system of any of Example 6-9, wherein the plurality of sublayers alternate between the first material and the second material.
The head-mounted display system of any of Example 5-10, wherein the plurality of sublayers comprises an interference coating.
The head-mounted display system of any of Example 5-11, wherein the plurality of sublayers comprises a quarter wave stack.
The head-mounted display system of any of the Examples above, wherein the metal comprises aluminum, silver, gold, or copper.
The head-mounted display system of any of the Examples above, wherein the said first diffraction grating comprises a blazed diffractive grating.
The head-mounted display system of Example 14, wherein said first diffraction grating comprises diffractive features comprising peaks spaced apart by groove therebetween.
The head-mounted display system of any of the Examples above, wherein the said first diffraction grating comprises diffractive features comprising a plurality of straight lines.
The waveguide of any of the Examples above, wherein diffraction grating comprises diffractive features that are asymmetric.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarizations having different polarization angles.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarizations oriented in orthogonal directions.
The head-mounted display system of any of the Examples above, wherein the first and second polarization direction comprise transverse magnetic and transverse electric polarizations, respectively.
The head-mounted display system of any of Examples 1-19, wherein the first and second polarization direction comprise transverse electric and transverse magnetic polarizations, respectively.
The head-mounted display system of any of Examples 1-19, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum.
The head-mounted display system of any of Examples 1-19, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.5 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.4 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.3 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.2 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.1 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 6 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 12 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 18 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 22 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±3 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±6 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±9 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±11 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein said waveguide is included in an eyepiece configured to direct light to an eye of a user wearing said head mounted display.
The head-mounted display system of Example 37, wherein said eyepiece is disposed on the frame and is configured to direct light from the light projection system into the eye of the user to display augmented reality image content to the vision field of the user, at least a portion of the eyepiece being transparent and disposed at a location in front of the eye of the user when the user wears the head-mounted display system, where the transparent portion transmits light from a portion of a physical environment in front of the user to the eye of the user to provide a view of the portion of the physical environment in front of the user.
The head-mounted display system of Examples 37 or 38, wherein said eyepiece comprises said at least one waveguide and said at least one waveguide is transparent to visible light such that the user can see through the waveguide.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an in-coupling optical element for coupling light from said light projection system into the waveguide to be guided therein.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an out-coupling optical element for coupling light from said light projection system out of the waveguide and directs said light to the user's eye to present said image content to the viewer.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises an in-coupling grating (ICG) configured to in-couple light from said light projection system into said waveguide.
The head-mounted display system of any of the Examples above, wherein said first diffraction gratings comprise an out-coupling grating (EPE) configured to out-couple light from said light projection system guided within said waveguide out of said waveguide.
The head-mounted display system of any of the Examples above, wherein the second layer is configured to be disposed over the first layer.
The head-mounted display system of any of the Examples above, further comprising a third layer disposed between said first layer and said second layer.
The head-mounted display system of Example 45, wherein the third layer is configured to help bond said second layer to said first layer.
The head-mounted display system of any of the Examples, wherein the waveguide comprises a second diffraction grating formed in said substrate, said substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide via said second diffraction grating and wherein the head-mounted display system further comprises:
a fourth layer disposed over said second diffraction grating such that the second diffraction grating has a third diffraction efficiency for a first polarization over a range of angles of light incident thereon,
wherein the first diffraction grating formed in said substrate on a first side of said substrate and the second diffraction grating is formed in said substrate on a second side of said substrate that opposes said first side of said substrate.
The head-mounted display system of any of the Examples above, wherein the first layer is conformally deposited onto one or more diffractive features of the first diffraction grating.
The head-mounted display system of the Examples above, wherein the first layer is directionally deposited onto the one or more diffractive features at an angle.
The head-mounted display system of Example 49, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The head-mounted display system of Example 49, wherein the angle is 75 to 105 degrees with respect to a surface of one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the second layer is conformally deposited onto one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the second layer is directionally deposited onto one or more diffractive features of the first diffraction grating at an angle.
The head-mounted display system of Example 53, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The head-mounted display system of Example 53, wherein the angle is 75 to 105 degrees with respect to a surface of one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features formed in a 1D array.
The head-mounted display system of any of Examples 1-55, wherein the first diffraction grating comprises diffractive features formed in a 2D array.
The head-mounted display system of Example 57, wherein the 2D array comprises a square array.
The head-mounted display of any of the Examples above, wherein the diffractive features are asymmetrical so as to provide a blazed grating.
The head-mounted display of any of the Examples above, wherein the diffractive features have material asymmetrically deposited thereon so as to prove for a blazed grating.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is configured to direct light preferentially in at least two directions.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is blazed in two directions.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises a one-dimensional grating.
The head-mounted display system of any of Examples 1-62, wherein the first diffraction grating comprises a two-dimensional grating.
The head-mounted display system of any of the Examples above comprising:
a second diffraction grating formed in said substrate; and
a fourth layer disposed over said second diffraction grating such that the second diffraction grating has a third diffraction efficiency for a first polarization over a range of angles of light incident thereon and a fourth diffraction efficiency for a second polarization over the range of angles of light incident thereon,
wherein the first diffraction grating is disposed over said substrate on a first side of said substrate and the second diffraction grating is disposed over said substrate on a second side of said substrate that opposes said first side of said substrate.
The head-mounted display system of any of the Examples above further comprising:
a second diffraction grating comprising material different than said substrate disposed over said substrate; and
a fourth layer disposed over said second diffraction grating such that the second diffraction grating has a third diffraction efficiency for a first polarization over a range of angles of light incident thereon and a fourth diffraction efficiency for a second polarization over the range of angles of light incident thereon,
wherein the first diffraction grating is disposed over said substrate on a first side of said substrate and the second diffraction grating is disposed over said substrate on a second side of said substrate that opposes said first side of said substrate.
The head-mounted display system of any of the Examples above, wherein said substrate is configured to guide at least a portion of the light from said light projection system coupled into said waveguide via said second diffraction grating
The head-mounted display system of any of the Examples above, wherein the third diffraction efficiency for said first polarization over a range of angles of light incident thereon is greater than the fourth diffraction efficiency for said second polarization over the range of angles of light incident thereon.
The head-mounted display system of any of the Examples above, wherein the third diffraction efficiency at least 6 times the fourth diffraction efficiency over said range of angles.
The head-mounted display system of any of the Examples above, wherein the third diffraction efficiency for said first polarization over a range of angles of light incident thereon is less than the fourth diffraction efficiency for said second polarization over a range of angles of light incident thereon.
The head-mounted display system of any of the Examples above, wherein the fourth diffraction efficiency is at least 6 times the third diffraction efficiency over said range of angles.
The head-mounted display system of any of the Examples above, wherein the fourth layer comprise a dielectric.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.6.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.7.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.8.
The head-mounted display system of any of the Examples above, wherein the first layer comprises a dielectric.
The head-mounted display system of any of the Examples above, wherein the first layer comprise material having a refractive of 1.9 or more.
The head-mounted display system of any of the Examples above, wherein the first layer comprise material having a refractive of 2.0 or more.
The head-mounted display system of any of the Examples above, wherein the first layer comprises material having a refractive of 2.1 or more.
The head-mounted display system of any of the Examples above, further comprising a plurality of sublayers over said first layer, said plurality of sublayers comprising a first higher index material and a second lower index material.
The head-mounted display system of Example 80, wherein the first higher index material comprises titanium dioxide (TiO2) and a second lower index material comprises silicon dioxide (SiO2).
The head-mounted display system of Example 80 or 81, wherein the plurality of sublayers comprises only two sublayers.
The head-mounted display system of Example 80 or 81, wherein the plurality of sublayers comprises at least four sublayers.
The head-mounted display system of any of Examples 80-83, wherein the plurality of sublayers alternate between the first material and the second material.
The head-mounted display system of any of Examples 80-84, wherein the plurality of sublayers comprises an interference coating.
The head-mounted display system of any of Examples 80-85, wherein the plurality of sublayers comprises a quarter wave stack.
The head-mounted display system of any of Examples 80-86, wherein the plurality of sublayers over said first layer forms a bandpass filter.
The head-mounted display system of any of Examples 80-86, wherein the plurality of sublayers over said first layer forms a notch filter.
The head-mounted display system of any of Examples 80-86, wherein the plurality of sublayers over said first layer forms an anti-reflection (AR) coating.
The head-mounted display system of any of Examples 80-89, wherein first the lower index material has a refractive index of 1.6 or less.
The head-mounted display system of any of Examples 80-90, wherein the second higher index material has a refractive index of 1.9 or more.
The head-mounted display system of any of the Examples 80-91, wherein the first lower index material comprises silicon dioxide.
The head-mounted display system of any of the Examples 80-92, wherein the second higher index material comprises titanium dioxide.
The head-mounted display system of any of Examples 80-92, wherein the second higher index material comprises zirconium dioxide.
The head-mounted display system of any of Examples 80-92, wherein the second higher index material comprises zinc oxide.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises an average diffraction efficiency for said first polarization over said range of angles and said second diffraction efficiency comprises an average diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 40%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 50%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 60%.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 25 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 35 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 40 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±15 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±18 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±20 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features comprising first and second sidewalls.
The head-mounted display system of Example 107, wherein said first and second sidewalls are separated by a plateau.
The head-mounted display system of Example 107, wherein said first and second sidewalls joint to form salient angle at the top of said diffractive feature.
The head-mounted display system of any of Examples 107-109, wherein at least said first side wall is sloped at an angle such that said first sidewall is less steep than said second sidewall.
The head-mounted display system of any of Examples 107-110, wherein said first sidewall is wider than said second sidewall.
The head-mounted display system of any of the Examples 107-111, wherein said first sidewall forms an angle of from 45° to 85° at the base of said diffractive feature.
The head-mounted display system of any of the Examples 107-112, wherein said second sidewall forms an acute re-entrant angle at the base of said diffractive feature.
The head-mounted display system of any of the Examples 107-113, wherein said first diffraction grating comprises shark-fin shaped diffractive features.
The head-mounted display system of any of the Examples 107-112, wherein said second sidewall forms an obtuse re-entrant angle at the base of said diffractive feature.
The head-mounted display system of any of the Examples 107-112, wherein said second sidewall is vertical.
The head-mounted display system of any of the Examples 107-112 or 115-116, wherein said first diffraction grating comprises sawtooth shaped diffractive features.
The head-mounted display system of any of the Examples above, wherein said first layer comprises a biased deposition.
The head-mounted display system of any of the Examples above, wherein said first layer comprises a glazing angle deposition.
The head-mounted display system of any of Examples 107-119, wherein said first layer is biased to provide more coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 107-120, wherein said first layer covers a greater fraction of said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 107-121, wherein said first layer is biased to provide thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 107-122, wherein said first layer provides on average thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 107-123, wherein said first sidewall is completely covered by said second layer.
The head-mounted display system of any of Examples 107-124, wherein at least a portion of said second sidewall is not covered by said first layer.
The head-mounted display system of any of Examples 107-125, wherein said second sidewall includes more area not covered by said first layer than said first sidewall.
The head-mounted display system of any of Examples 107-126, wherein said second layer comprises a conformal deposition.
The head-mounted display system of any of Examples 107-127, wherein said first and second sidewalls are completely covered by said second layer.
The head-mounted display system of any of Examples 107-128, wherein said second layer is not biased to cover more of said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 107-129, wherein said second layer is not biased to provide thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 107-130, wherein said second layer does not provide on average thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 107-131, wherein said second sidewall is entirely covered by said second layer.
The head-mounted display system of any of Examples 107-132, wherein said second sidewall does not include more area not covered by said second layer than said first sidewall.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is within 20% of said second diffraction efficiency for said second polarization.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is within 30% of said second diffraction efficiency for said second polarization.
The head-mounted display system of any of Examples above, wherein said first diffraction grating with said first and second layers formed thereon comprise a reflective diffraction grating.
The head-mounted display system of any of Examples above, wherein said first diffraction grating with said first and second layers formed thereon comprise a reflective diffraction grating configured to diffract reflected light to couple light into said waveguide to be guided therein by total internal reflection.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 100 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 200 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 300 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a pitch from 290 nm to 690 nm.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises micro-LEDs.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises a DLP or a LCOS display.
The head-mounted display system of any of the Examples above, wherein said substrate includes nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate includes inorganic nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate comprises polymer.
A head-mounted display system comprising:
a head-mountable frame;
a light projection system configured to output light to provide image content;
a waveguide supported by the frame, the waveguide comprises a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide;
a first diffraction grating comprising material different than said substrate;
a first layer disposed over said first diffraction grating such that the first diffraction grating has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is greater than a second diffraction efficiency for a second polarization over the range of angles of light incident thereon; and
a second layer disposed over said first diffraction grating such that the first diffraction grating has a third diffraction efficiency for said second polarization over said range of angles of light incident thereon that is greater than a fourth diffraction efficiency for the first polarization over the range of angles of light incident thereon,
wherein a diffraction efficiency of the combination of the first diffraction grating together with the first and second layers is configured to provide a fifth diffraction efficiency for the first polarization over the range of angles of light incident thereon and a sixth diffraction efficiency for the second polarization over the range of angles of light incident thereon, the fifth diffraction efficiency being from 1 to 2 times the sixth diffraction efficiency or the sixth diffraction efficiency being from 1 to 2 times the fifth diffraction efficiency.
The head-mounted display system of Example 1, wherein the substrate comprises material a lithium-based oxide.
The head-mounted display system of Example 1 or 2, wherein the substrate comprises material lithium niobate.
The head-mounted display system of Example 1, wherein the substrate comprises material silicon carbide.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 1.9.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.0.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.1.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.2.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.3.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises polymer.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises imprintable material.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material has a refractive index of 1.4 to 1.95.
The head-mounted display system of any of between the Examples above, wherein the first diffraction grating material has a refractive index that is lower than said substrate.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises a blazed diffractive grating.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises diffractive features comprising peaks spaced apart by grooves therebetween.
The head-mounted display system of any of the Examples above, wherein the said first diffraction grating comprises diffractive features comprising a plurality of straight lines.
The waveguide of any of the Examples above, wherein said diffractive grating comprises diffractive features that are asymmetric.
The head-mounted display system of any of the Examples above, wherein the first layer comprises titanium dioxide (TiO2), zirconium dioxide (ZrO2) or silicon carbide (SiC).
The head-mounted display system of any of the Examples above, wherein the first layer comprises titanium dioxide (TiO2).
The head-mounted display system of any of the Examples above, wherein the first layer comprises zirconium dioxide (ZrO2).
The head-mounted display system of any of the Examples above, wherein the first layer comprises silicon carbide (SiC).
The head-mounted display system of any of the Examples above, wherein the first layer comprises a plurality of sublayers comprising a first higher index material and a second lower index material.
The head-mounted display system of Example 22, wherein the first higher index material comprises titanium dioxide (TiO2) and a second lower index material comprises silicon dioxide (SiO2).
The head-mounted display system of Example 22 or 23, wherein the plurality of sublayers comprising only two sublayers.
The head-mounted display system of Example 22 or 23, wherein the plurality of sublayers comprising at least four sublayers.
The head-mounted display system of any of Examples 22-25, wherein the plurality of sublayers alternate between the first material and the second material.
The head-mounted display system of any of Examples 22-26, wherein the plurality of sublayers comprises an interference coating.
The head-mounted display system of any of Examples 22-27, wherein the plurality of sublayers comprises a quarter wave stack.
The head-mounted display system of any of the Examples above, wherein the second layer comprises aluminum, silver, gold, or copper.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarization having different polarization angles.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarization oriented in orthogonal directions.
The head-mounted display system of any of the Examples above, wherein the first and second polarization direction comprise transverse magnetic and transverse electric polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first and second polarization direction comprise transverse electric and transverse magnetic polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the fifth diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum and wherein the sixth diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the fifth diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum and wherein the sixth diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the fifth diffraction efficiency is 1 to 1.5 times the sixth diffraction efficiency or the sixth diffraction efficiency is 1 to 1.5 times the fifth diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the fifth diffraction efficiency is 1 to 1.4 times the sixth diffraction efficiency or the sixth diffraction efficiency is 1 to 1.4 times the fifth diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the fifth diffraction efficiency is 1 to 1.3 times the sixth diffraction efficiency or the sixth diffraction efficiency is 1 to 1.3 times the fifth diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the fifth diffraction efficiency is 1 to 1.2 times the sixth diffraction efficiency or the sixth diffraction efficiency is 1 to 1.2 times the fifth diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the fifth diffraction efficiency is 1 to 1.1 times the sixth diffraction efficiency or the sixth diffraction efficiency is 1 to 1.1 times the fifth diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 6 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 12 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 18 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 22 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±3 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±6 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±9 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±11 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein said waveguide is included in an eyepiece configured to direct light to an eye of a user wearing said head mounted display.
The head-mounted display system of Example 49, wherein said eyepiece is disposed on the frame and is configured to direct light from the light projection system into the eye of the user to display augmented reality image content to the vision field of the user, at least a portion of the eyepiece being transparent and disposed at a location in front of the eye of the user when the user wears the head-mounted display system, where the transparent portion transmits light from a portion of a physical environment in front of the user to the eye of the user to provide a view of the portion of the physical environment in front of the user, the eyepiece comprising.
The head-mounted display system of Example 49 or 50, wherein said eyepiece comprises said at least one waveguide and said at least one waveguide is transparent to visible light such that the user can see through the waveguide.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an in-coupling optical element for coupling light from said light projection system into the waveguide to be guided therein.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an out-coupling optical element for coupling light from said light projection system out of the waveguide and directs said light to the user's eye to present said image content to the viewer.
The head-mounted display system of any of the Examples above, wherein said first diffraction gratings comprises an out-coupling grating (EPE) configured to out-couple light from said light projection system guided within said waveguide out of said waveguide.
The head-mounted display system of any of the Examples above, wherein said first diffraction gratings comprises an in-coupling grating (ICG) configured to in-couple light from said light projection system into said waveguide.
The head-mounted display system of any of the Examples above, wherein the second layer is configured to be disposed over the first layer.
The head-mounted display system of any of the Examples above comprising a third layer disposed between said first layer and said second layer.
The head-mounted display system of Example 57, wherein the third layer is configured to help bond said second layer to said first layer.
The head-mounted display system of any of the Examples above comprising:
a second diffraction grating comprising material different than said substrate disposed over said substrate; and
a fourth layer disposed over said second diffraction grating such that the second diffraction grating has a seventh diffraction efficiency for a first polarization over a range of angles of light incident thereon,
wherein the first diffraction grating is disposed over said substrate on a first side of said substrate and the second diffraction grating is disposed over said substrate on a second side of said substrate that opposes said first side of said substrate.
The head-mounted display system of Example 1, wherein the first layer is conformally deposited onto one or more diffractive features of the first diffraction grating.
The head-mounted display system of Example 1, wherein the first layer is directionally deposited onto the one or more diffractive features at an angle.
The head-mounted display system of Example 61, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The head-mounted display system of Example 61, wherein the angle is 75 to 105 degrees with respect to a surface of one or more diffractive features of the first diffraction grating.
The head-mounted display system of Example 1, wherein the second layer is conformally deposited onto one or more diffractive features of the first diffraction grating.
The head-mounted display system of Example 1, wherein the second layer is directionally deposited onto one or more diffractive features of the first diffraction grating at an angle.
The head-mounted display system of Example 65, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The head-mounted display system of Example 65, wherein the angle is 75 to 105 degrees with respect to a surface of one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features formed in a 1D array.
The head-mounted display system of any of Examples 1-68, wherein the first diffraction grating comprises diffractive features formed in a 2D array.
The head-mounted display system of Example 69, wherein the 2D array comprises a square array.
The head-mounted display of any of the Examples above, wherein the diffractive features are asymmetrical so as to provide a blazed grating.
The head-mounted display of any of the Examples above, wherein the diffractive features have material asymmetrically deposited thereon so as to prove for a blazed grating.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is configured to direct light preferentially in at least two directions.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is blazed in two directions.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises a one-dimensional grating.
The head-mounted display system of any of Examples 1-75, wherein the first diffraction grating comprises a two-dimensional grating.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises micro-LEDs.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises a DLP or a LCOS display.
The head-mounted display system of any of the Examples above, wherein said substrate includes nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate includes inorganic nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate comprises polymer.
A head-mounted display system comprising:
a head-mountable frame;
a light projection system configured to output light to provide image content; and
a waveguide supported by the frame, the waveguide comprises a substrate comprising optically transparent material and a first diffraction grating formed in said substrate, said substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide,
a first layer disposed over said first diffraction grating formed in said substrate, the first layer together with said first diffraction grating configured to provide a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is greater than a second diffraction efficiency for a second polarization over the range of angles of light incident thereon; and
a second layer disposed over said first diffraction grating formed in said substrate, the second layer together with said first diffraction grating configured to provide a third diffraction efficiency for said second polarization over said range of angles of light incident thereon that is greater than a fourth diffraction efficiency for the first polarization over the range of angles of light incident thereon,
wherein the first diffraction grating together with the first and second layers is configured to provide a fifth diffraction efficiency for a first polarization over the range of angles of light incident thereon and a sixth diffraction efficiency for a second polarization over the range of angles of light incident thereon, the fifth diffraction efficiency being from 1 to 2 times the sixth diffraction efficiency or the sixth diffraction efficiency is 1 to 2 times the fifth diffraction efficiency.
The head-mounted display system of Example 1, wherein the optically transparent material comprising the substrate has an index of refraction from 1.45 to 2.0.
The head-mounted display system of Example 1 or 2, wherein the transparent material comprising said substrate comprises polymer.
The head-mounted display system of any of the Examples above, wherein the first layer comprises titanium dioxide (TiO2), zirconium dioxide (ZrO2) or silicon carbide (SiC).
The head-mounted display system of any of the Examples above, wherein the first layer comprises a plurality of sublayers.
The head-mounted display system of Example 5, wherein the first layer comprises a plurality of sublayers comprising a first higher index material and a second lower index material.
The head-mounted display system of Example 5 or 6, wherein the first higher index material comprises titanium dioxide (TiO2) and a second lower index material comprises silicon dioxide (SiO2).
The head-mounted display system of any of Example 5-7, wherein the plurality of sublayers comprising only two sublayers.
The head-mounted display system of any of Example 5-7, wherein the plurality of sublayers comprising at least four sublayers.
The head-mounted display system of any of Example 6-9, wherein the plurality of sublayers alternate between the first material and the second material.
The head-mounted display system of any of Example 5-10, wherein the plurality of sublayers comprises an interference coating.
The head-mounted display system of any of Example 5-11, wherein the plurality of sublayers comprises a quarter wave stack.
The head-mounted display system of any of the Examples above, wherein the metal comprises aluminum, silver, gold, or copper.
The head-mounted display system of any of the Examples above, wherein the said first diffraction grating comprises a blazed diffractive grating.
The head-mounted display system of Example 14, wherein said first diffraction grating comprises diffractive features comprising peaks spaced apart by groove therebetween.
The head-mounted display system of any of the Examples above, wherein the said first diffraction grating comprises diffractive features comprising a plurality of straight lines.
The waveguide of any of the Examples above, wherein diffraction grating comprises diffractive features that are asymmetric.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarizations having different polarization angles.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarizations oriented in orthogonal directions.
The head-mounted display system of any of the Examples above, wherein the first and second polarization direction comprise transverse magnetic and transverse electric polarizations, respectively.
The head-mounted display system of any of Examples 1-19, wherein the first and second polarization direction comprise transverse electric and transverse magnetic polarizations, respectively.
The head-mounted display system of any of Examples 1-19, wherein the fifth diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum.
The head-mounted display system of any of Examples 1-19, wherein the sixth diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the fifth diffraction efficiency is 1 to 1.5 times the sixth diffraction efficiency or the sixth diffraction efficiency is 1 to 1.5 times the fifth diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the fifth diffraction efficiency is 1 to 1.4 times the sixth diffraction efficiency or the sixth diffraction efficiency is 1 to 1.4 times the fifth diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the fifth diffraction efficiency is 1 to 1.3 times the sixth diffraction efficiency or the sixth diffraction efficiency is 1 to 1.3 times the fifth diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the fifth diffraction efficiency is 1 to 1.2 times the sixth diffraction efficiency or the sixth diffraction efficiency is 1 to 1.2 times the fifth diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the fifth diffraction efficiency is 1 to 1.1 times the sixth diffraction efficiency or the sixth diffraction efficiency is 1 to 1.1 times the fifth diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 6 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 12 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 18 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 22 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±3 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±6 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±9 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±11 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein said waveguide is included in an eyepiece configured to direct light to an eye of a user wearing said head mounted display.
The head-mounted display system of Example 37, wherein said eyepiece is disposed on the frame and is configured to direct light from the light projection system into the eye of the user to display augmented reality image content to the vision field of the user, at least a portion of the eyepiece being transparent and disposed at a location in front of the eye of the user when the user wears the head-mounted display system, where the transparent portion transmits light from a portion of a physical environment in front of the user to the eye of the user to provide a view of the portion of the physical environment in front of the user.
The head-mounted display system of Examples 37 or 38, wherein said eyepiece comprises said at least one waveguide and said at least one waveguide is transparent to visible light such that the user can see through the waveguide.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an in-coupling optical element for coupling light from said light projection system into the waveguide to be guided therein.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an out-coupling optical element for coupling light from said light projection system out of the waveguide and directs said light to the user's eye to present said image content to the viewer.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises an in-coupling grating (ICG) configured to in-couple light from said light projection system into said waveguide.
The head-mounted display system of any of the Examples above, wherein said first diffraction gratings comprise an out-coupling grating (EPE) configured to out-couple light from said light projection system guided within said waveguide out of said waveguide.
The head-mounted display system of any of the Examples above, wherein the second layer is configured to be disposed over the first layer.
The head-mounted display system of any of the Examples above comprising a third layer disposed between said first layer and said second layer.
The head-mounted display system of Example 45, wherein the third layer is configured to help bond said second layer to said first layer.
The head-mounted display system of any of the Examples above wherein the waveguide comprises a second diffraction grating formed in said substrate, said substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide via said second diffraction grating and wherein the head-mounted display system comprises:
a fourth layer disposed over said second diffraction grating such that the second diffraction grating has a seventh diffraction efficiency for the first polarization over a range of angles of light incident thereon,
wherein the first diffraction grating formed in said substrate on a first side of said substrate and the second diffraction grating is formed in said substrate on a second side of said substrate that opposes said first side of said substrate.
The head-mounted display system of Example 1, wherein the first layer is conformally deposited onto one or more diffractive features of the first diffraction grating.
The head-mounted display system of Example 1, wherein the first layer is directionally deposited onto the one or more diffractive features at an angle.
The head-mounted display system of Example 49, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The head-mounted display system of Example 49, wherein the angle is 75 to 105 degrees with respect to a surface of one or more diffractive features of the first diffraction grating.
The head-mounted display system of Example 1, wherein the second layer is conformally deposited onto one or more diffractive features of the first diffraction grating.
The head-mounted display system of Example 1, wherein the second layer is directionally deposited onto one or more diffractive features of the first diffraction grating at an angle.
The head-mounted display system of Example 53, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The head-mounted display system of Example 53, wherein the angle is 75 to 105 degrees with respect to a surface of one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features formed in a 1D array.
The head-mounted display system of any of Examples 1-56, wherein the first diffraction grating comprises diffractive features formed in a 2D array.
The head-mounted display system of Example 57, wherein the 2D array comprises a square array.
The head-mounted display of any of the Examples above, wherein the diffractive features are asymmetrical so as to provide a blazed grating.
The head-mounted display of any of the Examples above, wherein the diffractive features have material asymmetrically deposited thereon so as to prove for a blazed grating.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is configured to direct light preferentially in at least two directions.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is blazed in two directions.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises a one-dimensional grating.
The head-mounted display system of any of Examples 1-62, wherein the first diffraction grating comprises a two-dimensional grating.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises micro-LEDs.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises a DLP or a LCOS display.
The head-mounted display system of any of the Examples above, wherein said substrate includes nanoparticles
The head-mounted display system of any of the Examples above, wherein said substrate includes inorganic nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate comprises polymer.
A head-mounted display system comprising:
a head-mountable frame;
a light projection system configured to output light to provide image content;
a waveguide supported by the frame, the waveguide comprises a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide;
a first diffraction grating comprising material different than said substrate over said substrate; and
a first layer comprising multilayer coating disposed over said first diffraction grating, the first diffraction grating together with the first layer configured to have a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is greater than a second diffraction efficiency for a second polarization over the range of angles of light incident thereon.
The head-mounted display system of Example 1, wherein the substrate comprises material a lithium-based oxide.
The head-mounted display system of Example 1 or 2, wherein the substrate comprises material lithium niobate.
The head-mounted display system of Example 1, wherein the substrate comprises material silicon carbide.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 1.9.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.0.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.1.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.2.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.3.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises polymer.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises imprintable material.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material has a refractive index of 1.4 to 1.95.
The head-mounted display system of any of between the Examples above, wherein the first diffraction grating material has a refractive index that is lower than said substrate.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises a blazed diffractive grating.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises diffractive features comprising peaks spaced apart by grooves therebetween.
The head-mounted display system of any of the Examples above, wherein the said first diffraction grating comprises diffractive features comprising a plurality of straight lines.
The waveguide of any of the Examples above, wherein said diffractive grating comprises diffractive features that are asymmetric.
The head-mounted display system of any of the Examples above, wherein the first layer comprises titanium dioxide (TiO2), zirconium dioxide (ZrO2) or silicon carbide (SiC).
The head-mounted display system of any of the Examples above, wherein the first layer comprises titanium dioxide (TiO2).
The head-mounted display system of any of the Examples above, wherein the first layer comprises zirconium dioxide (ZrO2).
The head-mounted display system of any of the Examples above, wherein the first layer comprises silicon carbide (SiC).
The head-mounted display system of any of the Examples above, wherein the first layer comprises a plurality of sublayers comprising a first higher index material and a second lower index material.
The head-mounted display system of Example 22, wherein the first higher index material comprises titanium dioxide (TiO2) and a second lower index material comprises silicon dioxide (SiO2).
The head-mounted display system of Example 22 or 23, wherein the plurality of sublayers comprising only two sublayers.
The head-mounted display system of Example 22 or 23, wherein the plurality of sublayers comprising at least four sublayers.
The head-mounted display system of any of Examples 22-25, wherein the plurality of sublayers alternate between the first material and the second material.
The head-mounted display system of any of Examples 22-26, wherein the plurality of sublayers comprises an interference coating.
The head-mounted display system of any of Examples 22-27, wherein the plurality of sublayers comprises a quarter wave stack.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarization having different polarization angles.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarization oriented in orthogonal directions.
The head-mounted display system of any of the Examples above, wherein the first and second polarization direction comprise transverse magnetic and transverse electric polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first and second polarization direction comprise transverse electric and transverse magnetic polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.5 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.4 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.3 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.2 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.1 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 6 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 12 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 18 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 22 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±3 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±6 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±9 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±11 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein said waveguide is included in an eyepiece configured to direct light to an eye of a user wearing said head mounted display.
The head-mounted display system of Example 48, wherein said eyepiece is disposed on the frame and is configured to direct light from the light projection system into the eye of the user to display augmented reality image content to the vision field of the user, at least a portion of the eyepiece being transparent and disposed at a location in front of the eye of the user when the user wears the head-mounted display system, where the transparent portion transmits light from a portion of a physical environment in front of the user to the eye of the user to provide a view of the portion of the physical environment in front of the user, the eyepiece comprising.
The head-mounted display system of Example 48 or 49, wherein said eyepiece comprises said at least one waveguide and said at least one waveguide is transparent to visible light such that the user can see through the waveguide.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an in-coupling optical element for coupling light from said light projection system into the waveguide to be guided therein.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an out-coupling optical element for coupling light from said light projection system out of the waveguide and directs said light to the user's eye to present said image content to the viewer.
The head-mounted display system of any of the Examples above, wherein said first diffraction gratings comprises an in-coupling grating (ICG) configured to in-couple light from said light projection system into said waveguide.
The head-mounted display system of Example 1, wherein the first layer is conformally deposited onto one or more diffractive features of the first diffraction grating.
The head-mounted display system of Example 1, wherein the first layer is directionally deposited onto the one or more diffractive features at an angle.
The head-mounted display system of Example 55, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The head-mounted display system of Example 55, wherein the angle is 75 to 105 degrees with respect to a surface of one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features formed in a 1D array.
The head-mounted display system of any of Examples 1-58, wherein the first diffraction grating comprises diffractive features formed in a 2D array.
The head-mounted display system of Example 59, wherein the 2D array comprises a square array.
The head-mounted display of any of the Examples above, wherein the diffractive features are asymmetrical so as to provide a blazed grating.
The head-mounted display of any of the Examples above, wherein the diffractive features have material asymmetrically deposited thereon so as to prove for a blazed grating.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is configured to direct light preferentially in at least two directions.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is blazed in two directions.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises a one-dimensional grating.
The head-mounted display system of any of Examples 1-64, wherein the first diffraction grating comprises a two-dimensional grating.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises micro-LEDs.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises a DLP or a LCOS display.
The head-mounted display system of any of the Examples above, wherein said substrate includes nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate includes inorganic nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate comprises polymer.
A head-mounted display system comprising:
a head-mountable frame;
a light projection system configured to output light to provide image content;
a waveguide supported by the frame, the waveguide comprising a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide;
a first diffraction grating configured to have a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is greater than a second diffraction efficiency for a second polarization over the range of angles of light incident thereon
a second diffraction grating, said substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide via said second diffraction grating, the second diffraction grating configured to have a third diffraction efficiency for the first polarization over a range of angles of light incident thereon that is less than a fourth diffraction efficiency for the second polarization over the range of angles of light incident thereon,
wherein the first diffraction grating is on a first side of said substrate and the second diffraction grating on a second side of said substrate opposite said first side of said substrate.
The head-mounted display system of any of Examples above, wherein said first diffraction grating comprise a transmissive diffraction grating.
The head-mounted display system of any of Examples above, wherein said first diffraction grating comprise a transmissive diffraction grating configured to diffract transmitted light to couple light into said waveguide to be guided therein by total internal reflection.
The head-mounted display system of any of Examples above, wherein said second diffraction grating comprise a reflective diffraction grating.
The head-mounted display system of any of Examples above, wherein said second diffraction grating comprise a reflective diffraction grating configured to diffract reflected light to couple light into said waveguide to be guided therein by total internal reflection.
The head-mounted display system of any of Examples above, wherein said first and second diffraction gratings comprise in-line gratings.
The head-mounted display system of any of Examples above, wherein said first and second diffraction gratings are aligned such that light transmitted through said first diffraction grating without being diffracted will be incident on said second diffraction grating.
The head-mounted display system of any of Examples above, wherein said first diffraction grating comprises material different than said substrate over said substrate.
The head-mounted display system of any of Examples above, wherein said first diffraction grating is formed in said substrate.
The head-mounted display system of any of Examples above, further comprising a first layer disposed over said first diffraction grating.
The head-mounted display system of any of Examples above, wherein said second diffraction grating comprises material different than said substrate over said substrate
The head-mounted display system of any of Examples above, wherein said second diffraction grating is formed in said substrate.
The head-mounted display system of any of Examples above, further comprising a second layer disposed over said second diffraction grating.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material a lithium-based oxide.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material lithium niobate.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material silicon carbide.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of at least 1.9.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of at least 2.0.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of at least 2.1.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of at least 2.2.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of at least 2.3.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises polymer.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises imprintable material.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material has a refractive index of 1.4 to 1.95.
The head-mounted display system of any of between the Examples above, wherein the first diffraction grating material has a refractive index that is lower than said substrate.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises a blazed diffractive grating.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises diffractive features comprising peaks spaced apart by grooves therebetween.
The head-mounted display system of any of the Examples above, wherein the said first diffraction grating comprises diffractive features comprising a plurality of straight lines.
The waveguide of any of the Examples above, wherein said first diffractive grating comprises diffractive features that are asymmetric.
The head-mounted display system of any of the Examples above, wherein the second diffraction grating material comprises polymer.
The head-mounted display system of any of the Examples above, wherein the second diffraction grating material comprises imprintable material.
The head-mounted display system of any of the Examples above, wherein the second diffraction grating material has a refractive index of 1.4 to 1.95.
The head-mounted display system of any of between the Examples above, wherein the second diffraction grating material has a refractive index that is lower than said substrate.
The head-mounted display system of any of the Examples above, wherein said second diffraction grating comprises a blazed diffractive grating.
The head-mounted display system of any of the Examples above, wherein said second diffraction grating comprises diffractive features comprising peaks spaced apart by grooves therebetween.
The head-mounted display system of any of the Examples above, wherein the said second diffraction grating comprises diffractive features comprising a plurality of straight lines.
The waveguide of any of the Examples above, wherein said second diffractive grating comprises diffractive features that are asymmetric.
The head-mounted display system of any of the Examples above, wherein the first layer has a refractive index of from 1.95 to 2.7.
The head-mounted display system of any of the Examples above, wherein the first layer has a refractive index of from 2.1 to 2.7.
The head-mounted display system of any of the Examples above, wherein the first layer has a refractive index of from 2.2 to 2.7.
The head-mounted display system of any of the Examples above, wherein the first layer has a refractive index of from 2.3 to 2.7.
The head-mounted display system of any of the Examples above, wherein the first layer comprises a dielectric.
The head-mounted display system of any of the Examples above, wherein the first layer comprises titanium dioxide (TiO2).
The head-mounted display system of any of the Examples above, wherein the second layer comprises metal.
The head-mounted display system of any of the Examples above, wherein the second layer comprises Al, Ag, or AlSi.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarization having different polarization angles.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarization oriented in orthogonal directions.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise transverse magnetic and transverse electric polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise transverse electric and transverse magnetic polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is at least 2 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the fourth diffraction efficiency is at least 2 times the third diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is at least 4 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the fourth diffraction efficiency is at least 4 times the third diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is at least 6 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the forth diffraction efficiency is at least 6 times the third diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is a transmissive diffraction grating diffracting more light transmitted therethrough than reflected therefrom.
The head-mounted display system of any of the Examples above, wherein the second diffraction efficiency is a reflective diffraction grating diffracting more light reflected therefrom than transmitted therethrough.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 6 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 12 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 18 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 22 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±3 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±6 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±9 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±11 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein said waveguide is included in an eyepiece configured to direct light to an eye of a user wearing said head mounted display.
The head-mounted display system of Example 48, wherein said eyepiece is disposed on the frame and is configured to direct light from the light projection system into the eye of the user to display augmented reality image content to the vision field of the user, at least a portion of the eyepiece being transparent and disposed at a location in front of the eye of the user when the user wears the head-mounted display system, where the transparent portion transmits light from a portion of a physical environment in front of the user to the eye of the user to provide a view of the portion of the physical environment in front of the user, the eyepiece comprising.
The head-mounted display system of Example 48 or 49, wherein said eyepiece comprises said at least one waveguide and said at least one waveguide is transparent to visible light such that the user can see through the waveguide.
The head-mounted display system of any of the Examples above, wherein said first diffraction gratings comprises an in-coupling grating (ICG) configured to in-couple light from said light projection system into said waveguide.
The head-mounted display system of any of the Examples above, wherein the first layer is conformally deposited onto one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the first layer is directionally deposited onto the one or more diffractive features at an angle.
The head-mounted display system of Example 73, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The head-mounted display system of Example 73, wherein the angle is 75 to 105 degrees with respect to a surface of one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features formed in a 1D array.
The head-mounted display system of any of Examples 1-75, wherein the first diffraction grating comprises diffractive features formed in a 2D array.
The head-mounted display system of Example 77, wherein the 2D array comprises a square array.
The head-mounted display of any of the Examples above, wherein the diffractive features are asymmetrical so as to provide a blazed grating.
The head-mounted display of any of the Examples above, wherein the diffractive features have material asymmetrically deposited thereon so as to prove for a blazed grating.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is configured to direct light preferentially in at least two directions.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is blazed in two directions.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises a one-dimensional grating.
The head-mounted display system of any of Examples 1-64, wherein the first diffraction grating comprises a two-dimensional grating.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.6.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.7.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.8.
The head-mounted display system of any of the Examples above, wherein the first layer comprises a dielectric.
The head-mounted display system of any of the Examples above, wherein the first layer comprise material having a refractive of 1.9 or more.
The head-mounted display system of any of the Examples above, further comprising an anti-reflective coating to reduce reflection of said first diffractive grating.
The head-mounted display system of any of the Examples above, further comprising a bandpass filter or a notch filter to alter the spectral reflectivity and/or spectral transmission said first diffractive grating.
The head-mounted display system of any of the Examples above, further comprising a plurality of sublayers over said first layer, said plurality of sublayers comprising a first higher index material and a second lower index material.
The head-mounted display system of Example 92, wherein the first higher index material comprises titanium dioxide (TiO2) and a second lower index material comprises silicon dioxide (SiO2).
The head-mounted display system of Example 92 or 93, wherein the plurality of sublayers comprising only two sublayers.
The head-mounted display system of Example 92 or 93, wherein the plurality of sublayers comprising at least four sublayers.
The head-mounted display system of any of Examples 92-95, wherein the plurality of sublayers alternate between the first material and the second material.
The head-mounted display system of any of Examples 92-96, wherein the plurality of sublayers comprises an interference coating.
The head-mounted display system of any of Examples 92-97, wherein the plurality of sublayers comprises a quarter wave stack.
The head-mounted display system of any of Examples 92-98, wherein the plurality of sublayers over said first layer forms a bandpass filter.
The head-mounted display system of any of Examples 92-98, wherein the plurality of sublayers over said first layer forms a notch filter.
The head-mounted display system of any of Examples 92-98, wherein the plurality of sublayers over said first layer forms an anti-reflection (AR) coating.
The head-mounted display system of any of Examples 92-101, wherein first the lower index material has a refractive index of 1.6 or less.
The head-mounted display system of any of Examples 92-102, wherein the second higher index material has a refractive index of 1.9 or more.
The head-mounted display system of any of the Examples 92-103, wherein the first lower index material comprises silicon dioxide.
The head-mounted display system of any of the Examples 92-104, wherein the second higher index material comprises titanium dioxide.
The head-mounted display system of any of Examples 92-104, wherein the second higher index material comprises zirconium dioxide.
The head-mounted display system of any of Examples 92-104, wherein the second higher index material comprises zinc oxide.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises an average diffraction efficiency for said first polarization over said range of angles and said second diffraction efficiency comprises an average diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 25 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 35 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 40 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±15 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±18 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±20 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features comprising first and second sidewalls.
The head-mounted display system of Example 116, wherein at least said first sidewalls is sloped.
The head-mounted display system of Examples 116 or 117, wherein said first and second sidewalls are separated by a plateau.
The head-mounted display system of Examples 116 or 117, wherein said first and second sidewalls joint to form salient angle at the top of said diffractive feature.
The head-mounted display system of any of Examples 116-119, wherein said first sidewall is sloped at an angle such that said first sidewall is less steep than said second sidewall.
The head-mounted display system of any of Examples 116-120, wherein said first sidewall is wider than said second sidewall.
The head-mounted display system of any of the Examples 116-121, wherein said first sidewall forms an angle of from 45° to 85° at said base of said diffractive feature.
The head-mounted display system of any of the Examples 116-122, wherein said second sidewall forms an acute re-entrant angle at the base of said diffractive feature.
The head-mounted display system of any of the Examples 116-123, wherein said first diffraction grating comprises shark-fin shaped diffractive features.
The head-mounted display system of any of the Examples 116-122, wherein said second sidewall forms an obtuse re-entrant angle at the base of said diffractive feature.
The head-mounted display system of any of the Examples 116-122, wherein said second sidewall is vertical.
The head-mounted display system of any of the Examples 116-122 or 125-126, wherein said first diffraction grating comprises sawtooth shaped diffractive features.
The head-mounted display system of any of the Examples above, wherein said first layer comprises a biased deposition.
The head-mounted display system of any of the Examples above, wherein said first layer comprises a glazing angle deposition.
The head-mounted display system of any of Examples 116-129, wherein said first layer is biased to provide more coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 116-130, wherein said first layer covers a greater fraction of said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 116-131, wherein said first layer is biased to provide thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 116-132, wherein said first layer provides on average thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of the Examples above, wherein the second diffraction grating comprises diffractive features comprising first and second sidewalls.
The head-mounted display system of any of Examples 134, wherein said first sidewall slopes at a shallower angle and said second sidewall slopes at a steeper angle.
The head-mounted display system of any of Examples 134 or 135, wherein said first sidewall is completely covered by said second layer.
The head-mounted display system of any of Examples 134-136, wherein at least a portion of said second sidewall is not covered by said second layer.
The head-mounted display system of any of Examples 134-137, wherein said second sidewall includes more area not covered by said second layer than said first sidewall.
The head-mounted display system of any of Examples 134-138, wherein said second layer comprises a conformal deposition.
The head-mounted display system of any of Examples 134-139, wherein said first and second sidewalls are completely covered by said second layer.
The head-mounted display system of any of Examples 134-140, wherein said second layer is not biased to cover more of said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 134-141, wherein said second layer does not provide thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 134-142, wherein said second layer does not provide on average thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 134-143, wherein said second sidewall is entirely covered by said second layer.
The head-mounted display system of any of Examples 134-144, wherein said second sidewall does not include more area not covered by said second layer than said first sidewall.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is more than 40% higher than said second diffraction efficiency for said second polarization.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is more than 50% higher than said second diffraction efficiency for said second polarization.
The head-mounted display system of any of Examples above, wherein said second diffraction efficiency for said second polarization is more than 40% higher than said first diffraction efficiency for said first polarization.
The head-mounted display system of any of Examples above, wherein said second diffraction efficiency for said second polarization is more 50% higher than said first diffraction efficiency for said first polarization.
The head-mounted display system of any of Examples above, wherein said second diffraction grating with said second layer formed thereon comprises a reflective diffraction grating.
The head-mounted display system of any of Examples above, wherein said second diffraction grating with said second layer formed thereon comprises a reflective diffraction grating configured to diffract reflected light to couple light into said waveguide to be guided therein by total internal reflection.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 100 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 200 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 300 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a pitch from 290 nm to 690 nm.
A head-mounted display system comprising:
a head-mountable frame;
a light projection system configured to output light to provide image content;
a waveguide supported by the frame, the waveguide comprising a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide;
a first diffraction grating comprising material different than said substrate over said substrate; and
a first layer disposed over said first diffraction grating such that the first diffraction grating has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is greater than a second diffraction efficiency for a second polarization over a range of angles of light incident thereon;
a second diffraction grating comprising material different than said substrate over said substrate, said substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide via said second diffraction grating
a second layer disposed over said second diffraction grating such that the second diffraction grating has a third diffraction efficiency for the first polarization over a range of angles of light incident thereon that is less than a fourth diffraction efficiency for the second polarization over a range of angles of light incident thereon,
wherein the first diffraction grating is on a first side of said substrate and the second diffraction grating on a second side of said substrate opposite said first side of said substrate.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises micro-LEDs.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises a DLP or a LCOS display.
The head-mounted display system of any of the Examples above, wherein said substrate includes nanoparticles
The head-mounted display system of any of the Examples above, wherein said substrate includes inorganic nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate comprises polymer.
A head-mounted display system comprising:
a head-mountable frame;
a light projection system configured to output light to provide image content; and
a waveguide supported by the frame, the waveguide comprises a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide;
a first diffraction grating comprising material different than said substrate over said substrate, wherein the substrate comprises a material having a first index of refraction;
a first layer disposed over said first diffraction grating, wherein the first layer comprises a material having a second index of refraction;
a material disposed over said first layer having a third index of refraction between the second index of refraction and an index of refraction of air,
wherein said first diffraction grating together with the first layer and the material over the first layer is configured to have a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is greater than a second diffraction efficiency for a second polarization over said range of angles of light incident thereon.
The head-mounted display system of Example 1, wherein the substrate comprises material a lithium-based oxide.
The head-mounted display system of Example 1 or 2, wherein the substrate comprises material lithium niobate.
The head-mounted display system of Example 1, wherein the substrate comprises material silicon carbide.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 1.9.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.0.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.1.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.2.
The head-mounted display system of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.3.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises polymer.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises imprintable material.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material has a refractive index of 1.4 to 1.95.
The head-mounted display system of any of between the Examples above, wherein the first diffraction grating material has a refractive index that is lower than said substrate.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises a blazed diffractive grating.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises diffractive features comprising peaks spaced apart by grooves therebetween.
The head-mounted display system of any of the Examples above, wherein the said first diffraction grating comprises diffractive features comprising a plurality of straight lines.
The waveguide of any of the Examples above, wherein said diffractive grating comprises diffractive features that are asymmetric.
The head-mounted display system of any of the Examples above, wherein the first layer comprises titanium dioxide (TiO2), zirconium dioxide (ZrO2) or silicon carbide (SiC).
The head-mounted display system of any of the Examples above, wherein the first layer comprises titanium dioxide (TiO2).
The head-mounted display system of any of the Examples above, wherein the first layer comprises zirconium dioxide (ZrO2).
The head-mounted display system of any of the Examples above, wherein the first layer comprises silicon carbide (SiC).
The head-mounted display system of any of the Examples above, wherein the first layer comprises a plurality of sublayers comprising a first higher index material and a second lower index material.
The head-mounted display system of Example 22, wherein the first higher index material comprises titanium dioxide (TiO2) and a second lower index material comprises silicon dioxide (SiO2).
The head-mounted display system of Example 22 or 23, wherein the plurality of sublayers comprising only two sublayers.
The head-mounted display system of Example 22 or 23, wherein the plurality of sublayers comprising at least four sublayers.
The head-mounted display system of any of Examples 22-25, wherein the plurality of sublayers alternate between the first material and the second material.
The head-mounted display system of any of Examples 22-26, wherein the plurality of sublayers comprises an interference coating.
The head-mounted display system of any of Examples 22-27, wherein the plurality of sublayers comprises a quarter wave stack.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarization having different polarization angles.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarization oriented in orthogonal directions.
The head-mounted display system of any of the Examples above, wherein the first and second polarization direction comprise transverse magnetic and transverse electric polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first and second polarization direction comprise transverse electric and transverse magnetic polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.5 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.4 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.3 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.2 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.1 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 6 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 12 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 18 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 22 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±3 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±6 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±9 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±11 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein said waveguide is included in an eyepiece configured to direct light to an eye of a user wearing said head mounted display.
The head-mounted display system of Example 48, wherein said eyepiece is disposed on the frame and is configured to direct light from the light projection system into the eye of the user to display augmented reality image content to the vision field of the user, at least a portion of the eyepiece being transparent and disposed at a location in front of the eye of the user when the user wears the head-mounted display system, where the transparent portion transmits light from a portion of a physical environment in front of the user to the eye of the user to provide a view of the portion of the physical environment in front of the user, the eyepiece comprising.
The head-mounted display system of Example 48 or 49, wherein said eyepiece comprises said at least one waveguide and said at least one waveguide is transparent to visible light such that the user can see through the waveguide.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an in-coupling optical element for coupling light from said light projection system into the waveguide to be guided therein.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an out-coupling optical element for coupling light from said light projection system out of the waveguide and directs said light to the user's eye to present said image content to the viewer.
The head-mounted display system of any of the Examples above, wherein said first diffraction gratings comprises an in-coupling grating (ICG) configured to in-couple light from said light projection system into said waveguide.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises a one-dimensional grating.
The head-mounted display system of any of Examples 1-53, wherein the first diffraction grating comprises a two-dimensional grating.
The head-mounted display system of Example 1, wherein the first layer is conformally deposited onto one or more diffractive features of the first diffraction grating.
The head-mounted display system of Example 1, wherein the first layer is directionally deposited onto the one or more diffractive features at an angle.
The head-mounted display system of Example 57, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The head-mounted display system of Example 57, wherein the angle is 75 to 105 degrees with respect to a surface of one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features formed in a 1D array.
The head-mounted display system of any of Examples 1-60, wherein the first diffraction grating comprises diffractive features formed in a 2D array.
The head-mounted display system of Example 61, wherein the 2D array comprises a square array.
The head-mounted display of any of the Examples above, wherein the diffractive features are asymmetrical so as to provide a blazed grating.
The head-mounted display of any of the Examples above, wherein the diffractive features have material asymmetrically deposited thereon so as to prove for a blazed grating.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is configured to direct light preferentially in at least two directions.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is blazed in two directions.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises micro-LEDs.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises a DLP or a LCOS display.
The head-mounted display system of any of the Examples above, wherein said substrate includes nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate includes inorganic nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate comprises polymer.
A method of fabricating a diffraction grating with reduced polarization sensitivity, the method comprising:
forming one or more diffractive features in or on a substrate configured to guide at least a portion of light from a light projection system coupled into the substrate;
depositing a first layer over said one or more diffractive features; and
depositing a second layer over said one or more diffractive features such that the one or more diffractive features has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon and a second diffraction efficiency for a second polarization over the range of angles of light incident thereon, the first diffraction efficiency being from 1 to 2 times the second diffraction efficiency.
The method of Example 1, wherein the substrate comprises a lithium-based oxide.
The method of Examples 1 or 2, wherein the substrate comprises lithium niobate.
The method of Example 1, wherein the substrate comprises material silicon carbide.
The method of Example 1, wherein the substrate comprises material having an index of refraction of at least 1.9.
The method of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.0.
The method of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.1.
The method of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.2.
The method of Example 1, wherein the substrate comprises material having an index of refraction of at least 2.3.
The method of any of the Examples above, wherein the substrate comprises polymer.
The method of any of the Examples above, wherein forming the one or more diffractive features comprises imprinting the one or more diffractive features into the substrate.
The method of any of the Examples above, wherein the one or more diffractive features comprises a blazed diffractive grating.
The method of any of the Examples above, wherein the one or more diffractive features comprises peaks spaced apart by grooves therebetween.
The method of any of the Examples above, wherein the one or more diffractive features comprise asymmetric diffractive features.
The method of Example 1, wherein depositing the first layer comprises conformally depositing at least one material onto the one or more diffractive features.
The method of Example 1, wherein depositing the first layer comprises directionally depositing at least one material onto the one or more diffractive features at an angle.
The method of Example 10, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The method of Example 10, wherein the angle is 75 to 105 degrees with respect to a surface of the one or more diffractive features.
The method of Example 1, wherein depositing the second layer comprises conformally depositing at least one material onto the one or more diffractive features.
The method of Example 1, wherein depositing the second layer comprises directionally depositing at least one material onto the one or more diffractive features at an angle.
The method of Example 14, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The method of Example 14, wherein the angle is 75 to 105 degrees with respect to a surface of the one or more diffractive features.
The method of any of the Examples above, wherein the first layer comprises titanium dioxide (TiO2), zirconium dioxide (ZrO2) or silicon carbide (SiC).
The method of any of the Examples above, wherein the first layer comprises titanium dioxide (TiO2).
The method of any of the Examples above, wherein the first layer comprises zirconium dioxide (ZrO2).
The method of any of the Examples above, wherein the first layer comprises silicon carbide (SiC).
The method of any of the Examples above, wherein the first layer comprises a plurality of sublayers comprising a first higher index material and a second lower index material.
The method of Example 27, wherein the first higher index material comprises titanium dioxide (TiO2) and a second lower index material comprises silicon dioxide (SiO2).
The method of Example 27 or 28, wherein the plurality of sublayers comprising only two sublayers.
The method of Example 27 or 28, wherein the plurality of sublayers comprising at least four sublayers.
The method of any of Examples 27-30, wherein the plurality of sublayers alternate between the first material and the second material.
The method of any of Examples 27-31, wherein the plurality of sublayers comprises an interference coating.
The method of any of Examples 27-32, wherein the plurality of sublayers comprises a quarter wave stack.
The method of any of the Examples above, wherein the metal comprises aluminum, silver, gold, or copper.
The method of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarizations having different polarization angles.
The method of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarizations oriented in orthogonal directions.
The method of any of the Examples above, wherein the first and second polarization direction comprise transverse magnetic and transverse electric polarizations, respectively.
The method of any of the Examples above, wherein the first and second polarization direction comprise transverse electric and transverse magnetic polarizations, respectively.
The method of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum.
The method of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum.
The method of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.5 times the second diffraction efficiency.
The method of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.4 times the second diffraction efficiency.
The method of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.3 times the second diffraction efficiency.
The method of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.2 times the second diffraction efficiency.
The method of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.1 times the second diffraction efficiency.
The method of any of the Examples above, wherein the range of angles is at least 6 degrees.
The method of any of the Examples above, wherein the range of angles is at least 12 degrees.
The method of any of the Examples above, wherein the range of angles is at least 18 degrees.
The method of any of the Examples above, wherein the range of angles is at least 22 degrees.
The method of any of the Examples above, wherein the range of angles is between ±3 degrees with respect to the plane of the substrate.
The method of any of the Examples above, wherein the range of angles is between ±6 degrees with respect to the plane of the substrate.
The method of any of the Examples above, wherein the range of angles is between ±9 degrees with respect to the plane of the substrate.
The method of any of the Examples above, wherein the range of angles is between ±11 degrees with respect to the plane of the substrate.
The method of any of the Examples above, wherein the second layer is configured to be disposed over the first layer.
The method of any of the Examples above further comprising a third layer disposed between said first layer and said second layer.
The method of Example 55, wherein the third layer is configured to help bond said second layer to said first layer.
The method of any of the Examples above, wherein the first diffraction grating comprises diffractive features formed in a 1D array.
The method of any of Examples 1-56, wherein the first diffraction grating comprises diffractive features formed in a 2D array.
The method of Example 58, wherein the 2D array comprises a square array.
The method of any of the Examples above, wherein the diffractive features are asymmetrical so as to provide a blazed grating.
The method of any of the Examples above, wherein the diffractive features have material asymmetrically deposited thereon so as to prove for a blazed grating.
The method of any of the Examples above, wherein said first diffraction grating is configured to direct light preferentially in at least two directions.
The method of any of the Examples above, wherein said first diffraction grating is blazed in two directions.
The method of any of the Examples above, glazing angle deposition (GLAD) is used to deposit said second layer.
The method of any of the Examples above, glazing angle deposition (GLAD) is used to deposit said second layer.
The method of any of the Examples above, wherein said diffractive features of said diffraction grating have first and second sidewalls, said second sidewalls comprising reentrant side walls such that deposition passively provides for less coverage of said second layer on said second reentrant sidewalls than on said first.
The method of any of the Examples above, wherein said diffractive features of said diffraction grating have first and second sidewalls, said second surface tilted such that deposition provides for less coverage of said second layer on said second sidewalls than on said first.
The method of any of the Examples above, wherein said diffractive features of said diffraction grating have first and second sidewalls, said second sidewalls having an obtuse internal angle as measured from the base of the diffraction grating such that deposition provides for less coverage of said second layer on said second sidewalls than on said first.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises micro-LEDs.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises a DLP or a LCOS display.
The head-mounted display system of any of the Examples above, wherein said substrate includes nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate includes inorganic nanoparticles.
A head-mounted display system comprising:
a head-mountable frame;
a light projection system configured to output light to provide image content;
a waveguide supported by the frame, the waveguide comprising a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide;
a first diffraction grating; and
a first layer disposed over said first diffraction grating such that said diffraction grating has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is from 1 to 2 times a second diffraction efficiency for a second polarization over said range of angles of light incident thereon.
The head-mounted display system of Example 1, wherein the first diffraction grating comprising material different than said substrate over said substrate.
The head-mounted display system of Examples 1 or 2, wherein the first diffraction grating is formed in said substrate.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises SiO2, B2O3, Li2O, or La2O3.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises glass.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises LiNbO3, LiTaO3, TiO2, ZrO2, ZnO, Si3N4, or SiC,
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises polymer.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises PC, PMMA, PVA. or acrylate containing resin.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.4 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.4 to 1.6.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.5 to 1.6.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.6 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.7 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.8 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.9 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 2.0 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 2.1 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 2.2 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 2.3 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 2.4 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 2.4 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.6 to 1.8.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises polymer.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises PC, PMMA, PVA, or acrylate containing resin.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises imprintable material.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises glass.
The head-mounted display system of any of Examples 1-22, wherein the first diffraction grating material has a refractive index of 1.4 to 1.7.
The head-mounted display system of any of Examples 1-22, wherein the first diffraction grating material has an index of refraction of from 1.4 to 1.6.
The head-mounted display system of any of Examples 1-22, wherein the first diffraction grating material has an index of refraction of from 1.5 to 1.6.
The head-mounted display system of any of Examples 1-22, wherein the first diffraction grating material has an index of refraction of from 1.6 to 1.8.
The head-mounted display system of any of Examples 1-22, wherein the first diffraction grating material has an index of refraction of from 1.7 to 1.8.
The head-mounted display system of any of Examples 1-22, wherein the first diffraction grating material has an index of refraction of from 1.8 to 2.2.
The head-mounted display system of any of Examples 1-22, wherein the first diffraction grating material has an index of refraction of from 1.9 to 2.2.
The head-mounted display system of any of Examples 1-22, wherein the first diffraction grating material has an index of refraction of from 2.0 to 2.4.
The head-mounted display system of any of Examples 1-22, wherein the first diffraction grating material has an index of refraction of from 2.2 to 2.4.
The head-mounted display system of any of Examples 1-22, wherein the first diffraction grating material has an index of refraction of from 2.2 to 2.6.
The head-mounted display system of any of Examples 1-22, wherein the first diffraction grating material has a refractive index that is lower than said substrate.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises a blazed diffractive grating.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises diffractive features comprising peaks spaced apart by grooves therebetween.
The head-mounted display system of any of the Examples above, wherein the said first diffraction grating comprises diffractive features comprising a plurality of straight lines.
The waveguide of any of the Examples above, wherein said diffractive grating comprises diffractive features that are asymmetric.
The head-mounted display system of any of the Examples above, wherein the first layer comprises: Si3N4, ZnO, ZrO2. TiO2, SiC, ZnTe, GaP, BP.
The head-mounted display system of any of Examples 1-41, wherein the first layer has a refractive index from 1.9 to 3.5.
The head-mounted display system of any of Examples 1-41, wherein the first layer has an index of refraction of from 1.9 to 2.2.
The head-mounted display system of any of Examples 1-41, wherein the first layer has an index of refraction of from 2.0 to 2.4.
The head-mounted display system of any of Examples 1-41, wherein the first layer has an index of refraction of from 2.2 to 2.6.
The head-mounted display system of any of Examples 1-41, wherein the first layer has an index of refraction of from 2.0 to 2.6.
The head-mounted display system of any of Examples 1-41, wherein the first layer has an index of refraction of from 2.0 to 2.7.
The head-mounted display system of any of Examples 1-41, wherein the first layer has an index of refraction of from 2.0 to 3.5.
The head-mounted display system of any of Examples 1-41, wherein the first layer has an index of refraction of from 2.1 to 2.7.
The head-mounted display system of any of Examples 1-41, wherein the first layer has an index of refraction of from 2.1 to 3.5.
The head-mounted display system of any of Examples 1-41, wherein the first layer has an index of refraction of from 2.2 to 2.7.
The head-mounted display system of any of Examples 1-41, wherein the first layer has an index of refraction of from 2.2 to 3.5.
The head-mounted display system of any of the Examples above, wherein the first layer has a refractive index greater than said first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the first layer has a refractive index greater than said substrate.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarization having different polarization angles.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarizations oriented in orthogonal directions.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise transverse magnetic and transverse electric polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise transverse electric and transverse magnetic polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.8 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.7 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.6 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.5 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.4 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.3 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.2 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.1 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 6 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 12 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 18 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 22 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±3 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±6 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±9 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±11 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein said waveguide is included in an eyepiece configured to direct light to an eye of a user wearing said head mounted display.
The head-mounted display system of Example 78, wherein said eyepiece is disposed on the frame and is configured to direct light from the light projection system into the eye of the user to display augmented reality image content to the vision field of the user, at least a portion of the eyepiece being transparent and disposed at a location in front of the eye of the user when the user wears the head-mounted display system, where the transparent portion transmits light from a portion of a physical environment in front of the user to the eye of the user to provide a view of the portion of the physical environment in front of the user, the eyepiece comprising.
The head-mounted display system of Example 78 or 79, wherein said eyepiece comprises said at least one waveguide and said at least one waveguide is transparent to visible light such that the user can see through the waveguide.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an in-coupling optical element for coupling light from said light projection system into the waveguide to be guided therein.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an out-coupling optical element for coupling light from said light projection system out of the waveguide and directs said light to the user's eye to present said image content to the viewer.
The head-mounted display system of any of the Examples above, wherein said first diffraction gratings comprises an in-coupling grating (ICG) configured to in-couple light from said light projection system into said waveguide.
The head-mounted display system of any of the Examples above, wherein the first layer is directionally deposited onto the one or more diffractive features at an angle.
The head-mounted display system of Example 84, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The head-mounted display system of Example 84, wherein the angle is 75 to 105 degrees with respect to a surface of one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features formed in a 1D array.
The head-mounted display system of any of Examples 1-86, wherein the first diffraction grating comprises diffractive features formed in a 2D array.
The head-mounted display system of Example 88, wherein the 2D array comprises a square array.
The head-mounted display of any of the Examples above, wherein the diffractive features are asymmetrical so as to provide a blazed grating.
The head-mounted display of any of the Examples above, wherein the diffractive features have material asymmetrically deposited thereon so as to prove for a blazed grating.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is configured to direct light preferentially in at least two directions.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is blazed in two directions.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises a one-dimensional grating.
The head-mounted display system of any of Examples 1-93, wherein the first diffraction grating comprises a two-dimensional grating.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features disposed on said substrate having at least first and second surface portions on opposite sides of the diffractive feature and at least a portion of said first surface portion of the diffractive feature does not include said first layer while at least a portion of said second surface portion includes said first layer thereon.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features having top and at least first and second opposite sidewalls and at least a portion of said first sidewall of the diffractive features does not include said first layer while at least a portion of said second sidewall includes said first layer thereon.
The head-mounted display system of any of the Examples above, wherein said first layer covers more of said first side than said second side.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features disposed on said substrate having at least first and second opposite sides and said first layer covers more of said first side than said second side.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features having a top and at least first and second opposite sides and said first layer covers more of said first side than said second side.
The head-mounted display system of any of the Examples above, wherein said first layer comprise a glancing angle of incidence deposition layer.
The head-mounted display system of any of the Examples above, wherein most of said diffractive features have a first diffractive feature of said first diffraction grating on said first side and a second diffractive feature of said first diffraction grating on a second side of said diffractive feature.
The head-mounted display system of any of the Examples above, wherein said diffractive features comprises tilted protrusions.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a cross-section in the shape of a parallelogram having sloping sidewalls.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a cross-section comprising a top surface and at least one sloping sidewall.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a cross-section comprising a top surface and two sloping sidewalls.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a cross-section comprising a top surface and two sloping sidewalls that slope in the same direction.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.4 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.4 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.4 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.4 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.4 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.4 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.6.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.7.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.8.
The head-mounted display system of any of the Examples above, wherein the first layer comprises a dielectric.
The head-mounted display system of any of the Examples above, wherein the first layer comprise material having a refractive of 1.9 or more.
The head-mounted display system of any of the Examples above, wherein the first layer comprise material having a refractive of 2.0 or more.
The head-mounted display system of any of the Examples above, wherein the first layer comprises material having a refractive of 2.1 or more.
The head-mounted display system of any of the Examples above, further comprising a plurality of sublayers over said first layer, said plurality of sublayers comprising a first higher index material and a second lower index material.
The head-mounted display system of Example 121, wherein the first higher index material comprises titanium dioxide (TiO2) and a second lower index material comprises silicon dioxide (SiO2).
The head-mounted display system of Example 121 or 122, wherein the plurality of sublayers comprising only two sublayers.
The head-mounted display system of Example 121 or 122, wherein the plurality of sublayers comprising at least four sublayers.
The head-mounted display system of any of Examples 121-124, wherein the plurality of sublayers alternate between the first material and the second material.
The head-mounted display system of any of Examples 121-125, wherein the plurality of sublayers comprises an interference coating.
The head-mounted display system of any of Examples 121-126, wherein the plurality of sublayers comprises a quarter wave stack.
The head-mounted display system of any of Examples 121-127, wherein the plurality of sublayers over said first layer forms a bandpass filter.
The head-mounted display system of any of Examples 121-127, wherein the plurality of sublayers over said first layer forms a notch filter.
The head-mounted display system of any of Examples 121-128, wherein the plurality of sublayers over said first layer forms an anti-reflection (AR) coating.
The head-mounted display system of any of Examples 121-130, wherein first the lower index material has a refractive index of 1.6 or less.
The head-mounted display system of any of Examples 121-131, wherein the second higher index material has a refractive index of 1.9 or more.
The head-mounted display system of any of the Examples 121-132, wherein the first lower index material comprises silicon dioxide.
The head-mounted display system of any of the Examples 121-133, wherein the second higher index material comprises titanium dioxide.
The head-mounted display system of any of Examples 121-133, wherein the second higher index material comprises zirconium dioxide.
The head-mounted display system of any of Examples 121-133, wherein the second higher index material comprises zinc oxide.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises an average diffraction efficiency for said first polarization over said range of angles and said second diffraction efficiency comprises an average diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 40%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 50%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 60%.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 25 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 35 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 40 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±15 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±18 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±20 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features comprising first and second sidewalls.
The head-mounted display system of Example 148, wherein said first and second sidewalls are separated by a plateau.
The head-mounted display system of Example 148, wherein said first and second sidewalls joint to form salient angle at the top of said diffractive feature.
The head-mounted display system of any of Examples 148-150, wherein at least said first side wall is sloped at an angle such that said first sidewall is less steep than said second sidewall.
The head-mounted display system of any of Examples 148-151, wherein said first sidewall is wider than said second sidewall.
The head-mounted display system of any of the Examples 148-152, wherein said first sidewall forms an angle of from 45° to 85° at said base of said diffractive feature.
The head-mounted display system of any of the Examples 148-153, wherein said second sidewall forms an acute re-entrant angle at the base of said diffractive feature.
The head-mounted display system of any of the Examples 148-154, wherein said first diffraction grating comprises shark-fin shaped diffractive features.
The head-mounted display system of any of the Examples 148-153, wherein said second sidewall forms an obtuse re-entrant angle at the base of said diffractive feature.
The head-mounted display system of any of the Examples 148-153, wherein said second sidewall is vertical.
The head-mounted display system of any of the Examples 148-153 or 156-157, wherein said first diffraction grating comprises sawtooth shaped diffractive features.
The head-mounted display system of any of the Examples above, wherein said first layer comprises a biased deposition.
The head-mounted display system of any of the Examples above, wherein said first layer comprises a glazing angle deposition.
The head-mounted display system of any of Examples 148-160, wherein said first layer is biased to provide more coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 148-161, wherein said first layer covers a greater fraction of said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 148-162, wherein said first layer is biased to provide thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 148-163, wherein said first layer provides on average thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 148-164, wherein said first sidewall is completely covered by said second layer.
The head-mounted display system of any of Examples 148-165, wherein at least a portion of said second sidewall is not covered by said first layer.
The head-mounted display system of any of Examples 148-166, wherein said second sidewall includes more area not covered by said first layer than said first sidewall.
The head-mounted display system of any of Examples 148-165, wherein on average at least a 80% of said second sidewall is not covered by said first layer.
The head-mounted display system of any of Examples 148-165, wherein on average at least a 90% of said second sidewall is not covered by said first layer.
The head-mounted display system of any of Examples 148-165, wherein on average at least a 95% of said second sidewall is not covered by said first layer.
The head-mounted display system of any of Examples 148-165, wherein on average at least a 98% of said second sidewall is not covered by said first layer.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is within 20% of said second diffraction efficiency for said second polarization.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is within 30% of said second diffraction efficiency for said second polarization.
The head-mounted display system of any of Examples above, wherein said first diffraction grating with said first layer formed thereon comprise a transmissive diffraction grating.
The head-mounted display system of any of Examples above, wherein said first diffraction grating with said first layer formed thereon comprise a transmissive diffraction grating configured to diffract transmitted light to couple light into said waveguide to be guided therein by total internal reflection.
The head-mounted display system of any of Examples 1-173, wherein said first diffraction grating with said first layer formed thereon comprise a transmissive diffraction grating configured to diffract reflected light to couple light be guided within said waveguide by total internal reflection out of said waveguide.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 100 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 200 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 300 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a pitch from 290 nm to 690 nm.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises micro-LEDs.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises a DLP or a LCOS display.
The head-mounted display system of any of the Examples above, wherein said substrate includes nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate includes inorganic nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate comprises polymer.
A head-mounted display system comprising:
a head-mountable frame;
a light projection system configured to output light to provide image content;
a waveguide supported by the frame, the waveguide comprising a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide;
a first diffraction grating configured such that said diffraction grating has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is from 1 to 2 times a second diffraction efficiency for a second polarization over said range of angles of light incident thereon.
The head-mounted display system of Example 1, wherein the first diffraction grating comprising material different than said substrate over said substrate.
The head-mounted display system of Examples 1 or 2, wherein the first diffraction grating is formed in said substrate.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises SiO2 or glass.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises B2O3, Li2O, or La2O3.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises TiO2, ZrO2, ZnO, or Si3N4.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises LiNbO3, LiTaO3, or SiC,
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises polymer.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises PC, PMMA, PVA. or acrylate containing resin.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.4 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.4 to 1.6.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.5 to 1.6.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.4 to 1.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.5 to 1.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.4 to 1.8.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.5 to 1.8.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of at least 1.4 and less than 1.9.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of at least 1.5 and less than 1.9.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.6 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.7 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.8 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.9 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 2.0 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 2.1 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 2.2 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 2.3 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 2.4 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 2.4 to 2.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.6 to 1.8.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises polymer.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises PC, PMMA, PVA, or acrylate containing resin.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises imprintable material.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises glass.
The head-mounted display system of any of Examples 1-29, wherein the first diffraction grating material has a refractive index of 1.4 to 1.7.
The head-mounted display system of any of Examples 1-29, wherein the first diffraction grating material has an index of refraction of from 1.4 to 1.6.
The head-mounted display system of any of Examples 1-29, wherein the first diffraction grating material has an index of refraction of from 1.5 to 1.6.
The head-mounted display system of any of Examples 1-29, wherein the first diffraction grating material has an index of refraction of from 1.6 to 1.8.
The head-mounted display system of any of Examples 1-29, wherein the first diffraction grating material has an index of refraction of from 1.7 to 1.8.
The head-mounted display system of any of Examples 1-29, wherein the first diffraction grating material has an index of refraction of from 1.8 to 2.2.
The head-mounted display system of any of Examples 1-29, wherein the first diffraction grating material has an index of refraction of from 1.9 to 2.2.
The head-mounted display system of any of Examples 1-29, wherein the first diffraction grating material has an index of refraction of from 2.0 to 2.4.
The head-mounted display system of any of Examples 1-29, wherein the first diffraction grating material has an index of refraction of from 2.2 to 2.4.
The head-mounted display system of any of Examples 1-29, wherein the first diffraction grating material has an index of refraction of from 2.2 to 2.6.
The head-mounted display system of any of Examples 1-29, wherein the first diffraction grating material has a refractive index that is higher than said substrate.
The head-mounted display system of any of Examples 1-29, wherein the first diffraction grating material has a refractive index that is the same as said substrate.
The head-mounted display system of any of Examples 1-29, wherein the first diffraction grating material has a refractive index that is lower than said substrate.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises a blazed diffractive grating.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises diffractive features comprising peaks spaced apart by grooves therebetween.
The head-mounted display system of any of the Examples above, wherein the said first diffraction grating comprises diffractive features comprising a plurality of straight lines.
The waveguide of any of the Examples above, wherein said diffractive grating comprises diffractive features that are asymmetric.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarization having different polarization angles.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarizations oriented in orthogonal directions.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise transverse magnetic and transverse electric polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise transverse electric and transverse magnetic polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.8 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.7 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.6 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.5 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.4 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.3 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.2 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.1 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 6 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 12 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 18 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 22 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±3 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±6 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±9 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±11 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein said waveguide is included in an eyepiece configured to direct light to an eye of a user wearing said head mounted display.
The head-mounted display system of Example 73, wherein said eyepiece is disposed on the frame and is configured to direct light from the light projection system into the eye of the user to display augmented reality image content to the vision field of the user, at least a portion of the eyepiece being transparent and disposed at a location in front of the eye of the user when the user wears the head-mounted display system, where the transparent portion transmits light from a portion of a physical environment in front of the user to the eye of the user to provide a view of the portion of the physical environment in front of the user, the eyepiece comprising.
The head-mounted display system of Example 73 or 74, wherein said eyepiece comprises said at least one waveguide and said at least one waveguide is transparent to visible light such that the user can see through the waveguide.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an in-coupling optical element for coupling light from said light projection system into the waveguide to be guided therein.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an out-coupling optical element for coupling light from said light projection system out of the waveguide and directs said light to the user's eye to present said image content to the viewer.
The head-mounted display system of any of the Examples above, wherein said first diffraction gratings comprises an in-coupling grating (ICG) configured to in-couple light from said light projection system into said waveguide.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features formed in a 1D array.
The head-mounted display system of any of Examples 1-78, wherein the first diffraction grating comprises diffractive features formed in a 2D array.
The head-mounted display system of Example 80, wherein the 2D array comprises a square array.
The head-mounted display of any of the Examples above, wherein the diffractive features are asymmetrical so as to provide a blazed grating.
The head-mounted display of any of the Examples above, wherein the diffractive features have material asymmetrically deposited thereon so as to prove for a blazed grating.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is configured to direct light preferentially in at least two directions.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is blazed in two directions.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises a one-dimensional grating.
The head-mounted display system of any of Examples 1-93, wherein the first diffraction grating comprises a two-dimensional grating.
The head-mounted display system of any of the Examples above, wherein most of said diffractive features have a first diffractive feature of said first diffraction grating on said first side and a second diffractive feature of said first diffraction grating on a second side of said diffractive feature.
The head-mounted display system of any of the Examples above, wherein said diffractive features comprises tilted protrusions.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a cross-section in the shape of a parallelogram having sloping sidewalls.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a cross-section comprising a top surface and at least one sloping sidewall.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a cross-section comprising a top surface and two sloping sidewalls.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a cross-section comprising a top surface and two sloping sidewalls that slope in the same direction.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.4 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.4 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.4 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.4 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.4 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.4 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.2 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.2 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.2 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.2 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.2 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.2 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.6.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.7.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.8.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of less than 1.9.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 1.8.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 1.75.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 1.7.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 1.6.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 1.5.
The head-mounted display system of any of the Examples above, further comprising a plurality of sublayers over said first diffraction grating, said plurality of sublayers comprising a first higher index material and a second lower index material.
The head-mounted display system of Example 115, wherein the first higher index material comprises titanium dioxide (TiO2) and a second lower index material comprises silicon dioxide (SiO2).
The head-mounted display system of Example 115 or 116, wherein the plurality of sublayers comprising only two sublayers.
The head-mounted display system of Example 115 or 116, wherein the plurality of sublayers comprising at least four sublayers.
The head-mounted display system of any of Examples 115-118, wherein the plurality of sublayers alternate between the first material and the second material.
The head-mounted display system of any of Examples 115-119, wherein the plurality of sublayers comprises an interference coating.
The head-mounted display system of any of Examples 115-120, wherein the plurality of sublayers comprises a quarter wave stack.
The head-mounted display system of any of Examples 115-121, wherein the plurality of sublayers over said first layer forms a bandpass filter.
The head-mounted display system of any of Examples 115-121, wherein the plurality of sublayers over said first layer forms a notch filter.
The head-mounted display system of any of Examples 115-121, wherein the plurality of sublayers over said first layer forms an anti-reflection (AR) coating.
The head-mounted display system of any of Examples 115-124, wherein first the lower index material has a refractive index of 1.6 or less.
The head-mounted display system of any of Examples 115-125, wherein the second higher index material has a refractive index of 1.9 or more.
The head-mounted display system of any of the Examples 115-126, wherein the first lower index material comprises silicon dioxide.
The head-mounted display system of any of the Examples 115-127, wherein the second higher index material comprises titanium dioxide.
The head-mounted display system of any of Examples 115-127, wherein the second higher index material comprises zirconium dioxide.
The head-mounted display system of any of Examples 115-127, wherein the second higher index material comprises zinc oxide.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises an average diffraction efficiency for said first polarization over said range of angles and said second diffraction efficiency comprises an average diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 10%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 20%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 30%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 40%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 50%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 60%.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 25 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 35 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 40 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±15 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±18 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±20 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features comprising first and second sidewalls.
The head-mounted display system of Example 145, wherein said first and second sidewalls are separated by a plateau.
The head-mounted display system of Example 145, wherein said first and second sidewalls joint to form salient angle at the top of said diffractive feature.
The head-mounted display system of any of Examples 145-147, wherein at least said first side wall is sloped at an angle such that said first sidewall is less steep than said second sidewall.
The head-mounted display system of any of Examples 145-148, wherein said first sidewall is wider than said second sidewall.
The head-mounted display system of any of the Examples 145-149, wherein said first sidewall forms an angle of from 45° to 85° at said base of said diffractive feature.
The head-mounted display system of any of the Examples 145-150, wherein said second sidewall forms an acute re-entrant angle at the base of said diffractive feature.
The head-mounted display system of any of the Examples 145-151, wherein said first diffraction grating comprises shark-fin shaped diffractive features.
The head-mounted display system of any of the Examples 145-150, wherein said second sidewall forms an obtuse re-entrant angle at the base of said diffractive feature.
The head-mounted display system of any of the Examples 145-150, wherein said second sidewall is vertical.
The head-mounted display system of any of the Examples 145-150 or 153-154, wherein said first diffraction grating comprises sawtooth shaped diffractive features.
The head-mounted display system of any of the Examples 148-152 or 154-155, wherein said first and second sidewalls are substantially parallel.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is within 20% of said second diffraction efficiency for said second polarization.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is within 30% of said second diffraction efficiency for said second polarization.
The head-mounted display system of any of Examples above, wherein said first diffraction grating comprises a transmissive diffraction grating.
The head-mounted display system of any of Examples above, wherein said first diffraction grating comprises a transmissive diffraction grating configured to diffract transmitted light to couple light into said waveguide to be guided therein by total internal reflection.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 100 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 200 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height greater than 200 and no more than 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 205 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 210 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 220 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 250 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 280 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 300 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 400 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a pitch from 290 nm to 690 nm.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 65%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 70%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 75%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 80%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 85%.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.6 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.6 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.6 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.6 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.6 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.6 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.65 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.65 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.65 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.65 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.65 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.65 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.7 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.7 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.7 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.7 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.7 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.7 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises micro-LEDs.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises a DLP or a LCOS display.
The head-mounted display system of any of the Examples above, wherein said substrate includes nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate includes inorganic nanoparticle
A head-mounted display system comprising:
a head-mountable frame;
a light projection system configured to output light to provide image content;
a waveguide supported by the frame, the waveguide comprising a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide, said substrate having a refractive index of less than 1.9;
a first diffraction grating configured such that said diffraction grating has a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is from 1 to 2 times a second diffraction efficiency for a second polarization over said range of angles of light incident thereon.
The head-mounted display system of Example 1, wherein the first diffraction grating comprising material different than said substrate over said substrate.
The head-mounted display system of Examples 1 or 2, wherein the first diffraction grating is formed in said substrate.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises SiO2 or glass.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises B2O3, Li2O, or La2O3.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises polymer.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises PC, PMMA, PVA. or acrylate containing resin.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.4 to less than 1.9.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.4 to 1.6.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.5 to 1.6.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.4 to 1.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.5 to 1.7.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.4 to 1.8.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.5 to 1.8.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of at least 1.4 and less than 1.9.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of at least 1.5 and less than 1.9.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.6 to less than 1.9.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.7 to less than 1.9.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.8 to less than 1.9.
The head-mounted display system of any of Examples 1-3, wherein the substrate comprises material having an index of refraction of from 1.6 to 1.8.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises polymer.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises PC, PMMA, PVA, or acrylate containing resin.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises imprintable material.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises glass.
The head-mounted display system of any of Examples 1-20, wherein the first diffraction grating material has a refractive index of 1.4 to 1.7.
The head-mounted display system of any of Examples 1-20, wherein the first diffraction grating material has an index of refraction of from 1.4 to 1.6.
The head-mounted display system of any of Examples 1-20, wherein the first diffraction grating material has an index of refraction of from 1.5 to 1.6.
The head-mounted display system of any of Examples 1-20, wherein the first diffraction grating material has an index of refraction of from 1.6 to 1.8.
The head-mounted display system of any of Examples 1-20, wherein the first diffraction grating material has an index of refraction of from 1.7 to 1.8.
The head-mounted display system of any of Examples 1-20, wherein the first diffraction grating material has an index of refraction of from 1.8 to 2.2.
The head-mounted display system of any of Examples 1-20, wherein the first diffraction grating material has an index of refraction of from 1.9 to 2.2.
The head-mounted display system of any of Examples 1-20, wherein the first diffraction grating material has an index of refraction of from 2.0 to 2.4.
The head-mounted display system of any of Examples 1-20, wherein the first diffraction grating material has an index of refraction of from 2.2 to 2.4.
The head-mounted display system of any of Examples 1-20, wherein the first diffraction grating material has an index of refraction of from 2.2 to 2.6.
The head-mounted display system of any of Examples 1-20, wherein the first diffraction grating material has a refractive index that is higher than said substrate.
The head-mounted display system of any of Examples 1-20, wherein the first diffraction grating material has a refractive index that is the same as said substrate.
The head-mounted display system of any of Examples 1-20, wherein the first diffraction grating material has a refractive index that is lower than said substrate.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises a blazed diffractive grating.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises diffractive features comprising peaks spaced apart by grooves therebetween.
The head-mounted display system of any of the Examples above, wherein the said first diffraction grating comprises diffractive features comprising a plurality of straight lines.
The waveguide of any of the Examples above, wherein said diffractive grating comprises diffractive features that are asymmetric.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarization having different polarization angles.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarizations oriented in orthogonal directions.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise transverse magnetic and transverse electric polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise transverse electric and transverse magnetic polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.8 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.7 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.6 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.5 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.4 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.3 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.2 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.1 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 6 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 12 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 18 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 22 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±3 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±6 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±9 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±11 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein said waveguide is included in an eyepiece configured to direct light to an eye of a user wearing said head mounted display.
The head-mounted display system of Example 64, wherein said eyepiece is disposed on the frame and is configured to direct light from the light projection system into the eye of the user to display augmented reality image content to the vision field of the user, at least a portion of the eyepiece being transparent and disposed at a location in front of the eye of the user when the user wears the head-mounted display system, where the transparent portion transmits light from a portion of a physical environment in front of the user to the eye of the user to provide a view of the portion of the physical environment in front of the user, the eyepiece comprising.
The head-mounted display system of Example 64 or 65, wherein said eyepiece comprises said at least one waveguide and said at least one waveguide is transparent to visible light such that the user can see through the waveguide.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an in-coupling optical element for coupling light from said light projection system into the waveguide to be guided therein.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an out-coupling optical element for coupling light from said light projection system out of the waveguide and directs said light to the user's eye to present said image content to the viewer.
The head-mounted display system of any of the Examples above, wherein said first diffraction gratings comprises an in-coupling grating (ICG) configured to in-couple light from said light projection system into said waveguide.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features formed in a 1D array.
The head-mounted display system of any of Examples 1-69, wherein the first diffraction grating comprises diffractive features formed in a 2D array.
The head-mounted display system of Example 71, wherein the 2D array comprises a square array.
The head-mounted display of any of the Examples above, wherein the diffractive features are asymmetrical so as to provide a blazed grating.
The head-mounted display of any of the Examples above, wherein the diffractive features have material asymmetrically deposited thereon so as to prove for a blazed grating.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is configured to direct light preferentially in at least two directions.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is blazed in two directions.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises a one-dimensional grating.
The head-mounted display system of any of Examples 1-76, wherein the first diffraction grating comprises a two-dimensional grating.
The head-mounted display system of any of the Examples above, wherein most of said diffractive features have a first diffractive feature of said first diffraction grating on said first side and a second diffractive feature of said first diffraction grating on a second side of said diffractive feature.
The head-mounted display system of any of the Examples above, wherein said diffractive features comprises tilted protrusions.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a cross-section in the shape of a parallelogram having sloping sidewalls.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a cross-section comprising a top surface and at least one sloping sidewall.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a cross-section comprising a top surface and two sloping sidewalls.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a cross-section comprising a top surface and two sloping sidewalls that slope in the same direction.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.4 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.4 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.4 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.4 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.4 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.4 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.2 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.2 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.2 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.2 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.2 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.2 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 1.89.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 1.88.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 1.85.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 1.8.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 1.75.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 1.7.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 1.6.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 1.5.
The head-mounted display system of any of the Examples above, further comprising a plurality of sublayers over said first diffraction grating, said plurality of sublayers comprising a first higher index material and a second lower index material.
The head-mounted display system of Example 105, wherein the first higher index material comprises titanium dioxide (TiO2) and a second lower index material comprises silicon dioxide (SiO2).
The head-mounted display system of Example 105 or 106, wherein the plurality of sublayers comprising only two sublayers.
The head-mounted display system of Example 105 or 106, wherein the plurality of sublayers comprising at least four sublayers.
The head-mounted display system of any of Examples 105-108, wherein the plurality of sublayers alternate between the first material and the second material.
The head-mounted display system of any of Examples 105-109, wherein the plurality of sublayers comprises an interference coating.
The head-mounted display system of any of Examples 105-110, wherein the plurality of sublayers comprises a quarter wave stack.
The head-mounted display system of any of Examples 105-111, wherein the plurality of sublayers over said first layer forms a bandpass filter.
The head-mounted display system of any of Examples 105-111, wherein the plurality of sublayers over said first layer forms a notch filter.
The head-mounted display system of any of Examples 105-111, wherein the plurality of sublayers over said first layer forms an anti-reflection (AR) coating.
The head-mounted display system of any of Examples 105-114, wherein first the lower index material has a refractive index of 1.6 or less.
The head-mounted display system of any of Examples 105-115, wherein the second higher index material has a refractive index of 1.9 or more.
The head-mounted display system of any of the Examples 105-116, wherein the first lower index material comprises silicon dioxide.
The head-mounted display system of any of the Examples 105-117, wherein the second higher index material comprises titanium dioxide.
The head-mounted display system of any of Examples 105-117, wherein the second higher index material comprises zirconium dioxide.
The head-mounted display system of any of Examples 105-117, wherein the second higher index material comprises zinc oxide.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises an average diffraction efficiency for said first polarization over said range of angles and said second diffraction efficiency comprises an average diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 10%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 20%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 30%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 40%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 50%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 60%.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 25 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 35 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 40 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±15 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±18 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±20 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features comprising first and second sidewalls.
The head-mounted display system of Example 135, wherein said first and second sidewalls are separated by a plateau.
The head-mounted display system of Example 135, wherein said first and second sidewalls joint to form salient angle at the top of said diffractive feature.
The head-mounted display system of any of Examples 135-137, wherein at least said first side wall is sloped at an angle such that said first sidewall is less steep than said second sidewall.
The head-mounted display system of any of Examples 135-138, wherein said first sidewall is wider than said second sidewall.
The head-mounted display system of any of the Examples 135-139, wherein said first sidewall forms an angle of from 45° to 85° at said base of said diffractive feature.
The head-mounted display system of any of the Examples 135-140, wherein said second sidewall forms an acute re-entrant angle at the base of said diffractive feature.
The head-mounted display system of any of the Examples 135-141, wherein said first diffraction grating comprises shark-fin shaped diffractive features.
The head-mounted display system of any of the Examples 135-140, wherein said second sidewall forms an obtuse re-entrant angle at the base of said diffractive feature.
The head-mounted display system of any of the Examples 135-140, wherein said second sidewall is vertical.
The head-mounted display system of any of the Examples 135-140 or 143-144, wherein said first diffraction grating comprises sawtooth shaped diffractive features.
The head-mounted display system of any of the Examples 138-142 or 144-145, wherein said first and second sidewalls are substantially parallel.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is within 20% of said second diffraction efficiency for said second polarization.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is within 30% of said second diffraction efficiency for said second polarization.
The head-mounted display system of any of Examples above, wherein said first diffraction grating comprises a transmissive diffraction grating.
The head-mounted display system of any of Examples above, wherein said first diffraction grating comprises a transmissive diffraction grating configured to diffract transmitted light to couple light into said waveguide to be guided therein by total internal reflection.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 100 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 200 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 300 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height greater than 200 and no more than 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 205 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 210 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 220 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 250 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 280 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 300 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 400 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a pitch from 290 nm to 690 nm.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 65%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 70%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 75%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 80%.
The head-mounted display system of any of the Examples above, wherein said first diffraction efficiency averaged over said range of angles and said second diffraction efficiency averaged over said range of angles have an efficiency of at least 85%.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.6 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.6 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.6 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.6 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.6 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.6 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.65 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.65 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.65 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.65 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.65 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.65 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.7 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.7 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are on average at least 0.7 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.7 for a range of angles of incident light of at least 10 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.7 for a range of angles of incident light of at least 20 degrees.
The head-mounted display system of any of the Examples above, wherein said first and second diffraction efficiencies are at least 0.7 for a range of angles of incident light of at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises micro-LEDs.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises a DLP or a LCOS display.
The head-mounted display system of any of the Examples above, wherein said substrate includes nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate includes inorganic nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate comprises polymer.
A head-mounted display system comprising:
a head-mountable frame;
a light projection system configured to output light to provide image content;
a waveguide supported by the frame, the waveguide comprising a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide;
a first diffraction grating configured to have a first diffraction efficiency for a first polarization over a range of angles of light incident thereon and a second diffraction efficiency for a second polarization over the range of angles of light incident thereon, the first diffraction efficiency being from 1 to 2 times the second diffraction efficiency;
a second diffraction grating, said substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide via said second diffraction grating, the second diffraction grating
configured to have a third diffraction efficiency for the first polarization over a range of angles of light incident thereon and a fourth diffraction efficiency for the second polarization over the range of angles of light incident thereon, the fourth diffraction efficiency being from 1 to 2 times the third diffraction efficiency or the third diffraction efficiency being from 1 to 2 times the fourth diffraction efficiency over the range of angles of light incident thereon;
wherein the first diffraction grating is on a first side of said substrate and the second diffraction grating on a second side of said substrate opposite said first side of said substrate.
The head-mounted display system of any of Examples above, wherein said first diffraction grating comprise a transmissive diffraction grating.
The head-mounted display system of any of Examples above, wherein said first diffraction grating comprise a transmissive diffraction grating configured to diffract transmitted light to couple light into said waveguide to be guided therein by total internal reflection.
The head-mounted display system of any of Examples above, wherein said second diffraction grating comprise a reflective diffraction grating.
The head-mounted display system of any of Examples above, wherein said second diffraction grating comprise a reflective diffraction grating configured to diffract reflected light to couple light into said waveguide to be guided therein by total internal reflection.
The head-mounted display system of any of Examples above, wherein said first and second diffraction gratings comprise in-line gratings.
The head-mounted display system of any of Examples above, wherein said first and second diffraction gratings are aligned such that light transmitted through said first diffraction grating without being diffracted will be incident on said second diffraction grating.
The head-mounted display system of any of Examples above, wherein said first diffraction grating comprises material different than said substrate over said substrate.
The head-mounted display system of any of Examples above, wherein said first diffraction grating is formed in said substrate.
The head-mounted display system of any of Examples above, further comprising a first layer disposed over said first diffraction grating.
The head-mounted display system of any of Examples above, wherein said second diffraction grating comprises material different than said substrate over said substrate
The head-mounted display system of any of Examples above, wherein said second diffraction grating is formed in said substrate.
The head-mounted display system of any of Examples above, further comprising a second layer disposed over said second diffraction grating.
The head-mounted display system of any of Examples above, further comprising a third layer disposed over said second layer.
The head-mounted display system of any of the Examples above, wherein the substrate comprises a lithium-based oxide.
The head-mounted display system of any of the Examples above, wherein the substrate comprises lithium niobate.
The head-mounted display system of any of the Examples above, wherein the substrate comprises silicon carbide.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of at least 1.9.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of at least 2.0.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of at least 2.1.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of at least 2.2.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of at least 2.3.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises polymer.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material comprises imprintable material.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material has a refractive index of 1.4 to 1.95.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating material has a refractive index that is lower than said substrate.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises a blazed diffractive grating.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises diffractive features comprising peaks spaced apart by grooves therebetween.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises diffractive features comprising a plurality of straight lines.
The waveguide of any of the Examples above, wherein said first diffractive grating comprises diffractive features that are asymmetric.
The head-mounted display system of any of the Examples above, wherein the second diffraction grating material comprises polymer.
The head-mounted display system of any of the Examples above, wherein the second diffraction grating material comprises imprintable material.
The head-mounted display system of any of the Examples above, wherein the second diffraction grating material has a refractive index of 1.4 to 1.95.
The head-mounted display system of any of between the Examples above, wherein the second diffraction grating material has a refractive index that is lower than said substrate.
The head-mounted display system of any of the Examples above, wherein said second diffraction grating comprises a blazed diffractive grating.
The head-mounted display system of any of the Examples above, wherein said second diffraction grating comprises diffractive features comprising peaks spaced apart by grooves therebetween.
The head-mounted display system of any of the Examples above, wherein the said second diffraction grating comprises diffractive features comprising a plurality of straight lines.
The waveguide of any of the Examples above, wherein said second diffractive grating comprises diffractive features that are asymmetric.
The head-mounted display system of any of the Examples above, wherein the first layer has a refractive index of from 1.95 to 2.7.
The head-mounted display system of any of the Examples above, wherein the first layer has a refractive index of from 2.1 to 2.7.
The head-mounted display system of any of the Examples above, wherein the first layer has a refractive index of from 2.2 to 2.7.
The head-mounted display system of any of the Examples above, wherein the first layer has a refractive index of from 2.3 to 2.7.
The head-mounted display system of any of the Examples above, wherein the first layer comprises a dielectric.
The head-mounted display system of any of the Examples above, wherein the first layer comprises titanium dioxide (TiO2).
The head-mounted display system of any of the Examples above, wherein the second layer has a refractive index of from 1.95 to 2.7.
The head-mounted display system of any of the Examples above, wherein the second layer has a refractive index of from 2.1 to 2.7.
The head-mounted display system of any of the Examples above, wherein the second layer has a refractive index of from 2.2 to 2.7.
The head-mounted display system of any of the Examples above, wherein the second layer has a refractive index of from 2.3 to 2.7.
The head-mounted display system of any of the Examples above, wherein the second layer comprises a dielectric.
The head-mounted display system of any of the Examples above, wherein the second layer comprises titanium dioxide (TiO2).
The head-mounted display system of any of the Examples above, wherein the third layer comprises metal.
The head-mounted display system of any of the Examples above, wherein the third layer comprises Al, Ag, or AlSi.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarization having different polarization angles.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise first and second linear polarization oriented in orthogonal directions.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise transverse magnetic and transverse electric polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first and second polarizations comprise transverse electric and transverse magnetic polarizations, respectively.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency comprises a diffraction efficiency for transverse-electric polarized light averaged across the visible light spectrum and wherein the second diffraction efficiency comprises a diffraction efficiency for transverse-magnetic polarized light averaged across the visible light spectrum.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.5 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.4 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.3 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.2 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction efficiency is 1 to 1.1 times the second diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the third diffraction efficiency is 1 to 1.5 times the fourth diffraction efficiency or the fourth diffraction efficiency is 1 to 1.5 times the third diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the third diffraction efficiency is 1 to 1.4 times the fourth diffraction efficiency or the fourth diffraction efficiency is 1 to 1.4 times the third diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the third diffraction efficiency is 1 to 1.3 times the fourth diffraction efficiency or the fourth diffraction efficiency is 1 to 1.3 times the third diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the third diffraction efficiency is 1 to 1.2 times the fourth diffraction efficiency or the fourth diffraction efficiency is 1 to 1.2 times the third diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the third diffraction efficiency is 1 to 1.1 times the fourth diffraction efficiency or the fourth diffraction efficiency is 1 to 1.1 times the third diffraction efficiency.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating is a transmissive diffraction grating diffracting more light transmitted therethrough than reflected therefrom.
The head-mounted display system of any of the Examples above, wherein the second diffraction grating is a reflective diffraction grating diffracting more light reflected therefrom than transmitted therethrough.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 6 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 12 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 18 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 22 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±3 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±6 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±9 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±11 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein said waveguide is included in an eyepiece configured to direct light to an eye of a user wearing said head mounted display.
The head-mounted display system of Example 73, wherein said eyepiece is disposed on the frame and is configured to direct light from the light projection system into the eye of the user to display augmented reality image content to the vision field of the user, at least a portion of the eyepiece being transparent and disposed at a location in front of the eye of the user when the user wears the head-mounted display system, where the transparent portion transmits light from a portion of a physical environment in front of the user to the eye of the user to provide a view of the portion of the physical environment in front of the user, the eyepiece comprising.
The head-mounted display system of Example 73 or 74, wherein said eyepiece comprises said at least one waveguide and said at least one waveguide is transparent to visible light such that the user can see through the waveguide.
The head-mounted display system of any of the Examples above, wherein said first diffraction gratings comprises an in-coupling grating (ICG) configured to in-couple light from said light projection system into said waveguide.
The head-mounted display system of any of the Examples above, wherein the first layer is conformally deposited onto one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the first layer is directionally deposited onto the one or more diffractive features at an angle.
The head-mounted display system of Example 78, wherein the angle comprises 75 to 105 degrees with respect to a planar major surface of the substrate.
The head-mounted display system of Example 78, wherein the angle is 75 to 105 degrees with respect to a surface of one or more diffractive features of the first diffraction grating.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features formed in a 1D array.
The head-mounted display system of any of Examples 1-75, wherein the first diffraction grating comprises diffractive features formed in a 2D array.
The head-mounted display system of Example 82, wherein the 2D array comprises a square array.
The head-mounted display of any of the Examples above, wherein the diffractive features are asymmetrical so as to provide a blazed grating.
The head-mounted display of any of the Examples above, wherein the diffractive features have material asymmetrically deposited thereon so as to prove for a blazed grating.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is configured to direct light preferentially in at least two directions.
The head-mounted display of any of the Examples above, wherein said first diffraction grating is blazed in two directions.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises a one-dimensional grating.
The head-mounted display system of any of Examples 1-87, wherein the first diffraction grating comprises a two-dimensional grating.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.6.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.7.
The head-mounted display system of any of the Examples above, wherein the substrate comprises material having an index of refraction of no more than 2.8.
The head-mounted display system of any of the Examples above, wherein the first layer comprises a dielectric.
The head-mounted display system of any of the Examples above, wherein the first layer comprise material having a refractive of 1.9 or more.
The head-mounted display system of any of the Examples above, further comprising an anti-reflective coating to reduce reflection of said first diffractive grating.
The head-mounted display system of any of the Examples above, further comprising a bandpass filter or a notch filter to alter the spectral reflectivity and/or spectral transmission said first diffractive grating.
The head-mounted display system of any of the Examples above, further comprising a plurality of sublayers over said first layer, said plurality of sublayers comprising a first higher index material and a second lower index material.
The head-mounted display system of Example 97, wherein the first higher index material comprises titanium dioxide (TiO2) and a second lower index material comprises silicon dioxide (SiO2).
The head-mounted display system of Example 97 or 98, wherein the plurality of sublayers comprising only two sublayers.
The head-mounted display system of Example 97 or 98, wherein the plurality of sublayers comprising at least four sublayers.
The head-mounted display system of any of Examples 97-100, wherein the plurality of sublayers alternate between the first material and the second material.
The head-mounted display system of any of Examples 97-101, wherein the plurality of sublayers comprises an interference coating.
The head-mounted display system of any of Examples 97-102, wherein the plurality of sublayers comprises a quarter wave stack.
The head-mounted display system of any of Examples 97-103, wherein the plurality of sublayers over said first layer forms a bandpass filter.
The head-mounted display system of any of Examples 97-104, wherein the plurality of sublayers over said first layer forms a notch filter.
The head-mounted display system of any of Examples 97-105, wherein the plurality of sublayers over said first layer forms an anti-reflection (AR) coating.
The head-mounted display system of any of Examples 97-106, wherein first the lower index material has a refractive index of 1.6 or less.
The head-mounted display system of any of Examples 97-107, wherein the second higher index material has a refractive index of 1.9 or more.
The head-mounted display system of any of the Examples 97-108, wherein the first lower index material comprises silicon dioxide.
The head-mounted display system of any of the Examples 97-109, wherein the second higher index material comprises titanium dioxide.
The head-mounted display system of any of Examples 97-109, wherein the second higher index material comprises zirconium dioxide.
The head-mounted display system of any of Examples 97-109, wherein the second higher index material comprises zinc oxide.
The head-mounted display system of any of the Examples above, wherein said first diffraction grating comprises an average diffraction efficiency for said first polarization over said range of angles and said second diffraction efficiency comprises an average diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 25 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 30 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 35 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is at least 40 degrees.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±15 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±18 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the range of angles is between ±20 degrees with respect to the plane of the substrate.
The head-mounted display system of any of the Examples above, wherein the first diffraction grating comprises diffractive features comprising first and second sidewalls.
The head-mounted display system of Example 121, wherein at least said first sidewalls is sloped.
The head-mounted display system of Examples 121 or 122, wherein said first and second sidewalls are separated by a plateau.
The head-mounted display system of Examples 121 or 122, wherein said first and second sidewalls joint to form salient angle at the top of said diffractive feature.
The head-mounted display system of any of Examples 116-119, wherein said first sidewall is sloped at an angle such that said first sidewall is less steep than said second sidewall.
The head-mounted display system of any of Examples 116-120, wherein said first sidewall is wider than said second sidewall.
The head-mounted display system of any of the Examples 116-121, wherein said first sidewall forms an angle of from 45° to 85° at said base of said diffractive feature.
The head-mounted display system of any of the Examples 116-122, wherein said second sidewall forms an acute re-entrant angle at the base of said diffractive feature.
The head-mounted display system of any of the Examples 116-123, wherein said first diffraction grating comprises shark-fin shaped diffractive features.
The head-mounted display system of any of the Examples 116-122, wherein said second sidewall forms an obtuse re-entrant angle at the base of said diffractive feature.
The head-mounted display system of any of the Examples 116-122, wherein said second sidewall is vertical.
The head-mounted display system of any of the Examples 116-122 or 125-126, wherein said first diffraction grating comprises sawtooth shaped diffractive features.
The head-mounted display system of any of the Examples above, wherein said first layer comprises a biased deposition.
The head-mounted display system of any of the Examples above, wherein said first layer comprises a glazing angle deposition.
The head-mounted display system of any of Examples 121-134, wherein said first layer is biased to provide more coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 121-135, wherein said first layer covers a greater fraction of said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 121-136, wherein said first layer is biased to provide thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 121-137, wherein said first layer provides on average thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of the Examples above, wherein the second diffraction grating comprises diffractive features comprising first and second sidewalls.
The head-mounted display system of Example 139, wherein said first sidewall slopes at a shallower angle and said second sidewall slopes at a steeper angle.
The head-mounted display system of any of Examples 139 or 140, wherein said first sidewall is completely covered by said second layer.
The head-mounted display system of any of Examples 139-141, wherein at least a portion of said second sidewall is not covered by said second layer.
The head-mounted display system of any of Examples 139-142, wherein said second sidewall includes more area not covered by said second layer than said first sidewall.
The head-mounted display system of any of Examples 139-143, wherein said third layer comprises a conformal deposition.
The head-mounted display system of any of Examples 139-144, wherein said first and second sidewalls are completely covered by said third layer.
The head-mounted display system of any of Examples 139-145, wherein said third layer is not biased to cover more of said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 139-146, wherein said third layer does not provide thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 139-147, wherein said third layer does not provide on average thicker coverage on said first sidewall than said second sidewall.
The head-mounted display system of any of Examples 139-148, wherein said second sidewall is entirely covered by said third layer.
The head-mounted display system of any of Examples 139-149, wherein said second sidewall does not include more area not covered by said third layer than said first sidewall.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is not more than 20% higher than said second diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is not more than 30% higher than said second diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is not more than 40% higher than said second diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said first diffraction efficiency for said first polarization is not more than 50% higher than said second diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said second diffraction efficiency for said second polarization is not more than 20% higher than said first diffraction efficiency for said first polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said second diffraction efficiency for said second polarization is not more than 30% higher than said first diffraction efficiency for said first polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said second diffraction efficiency for said second polarization is not more than 40% higher than said first diffraction efficiency for said first polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said second diffraction efficiency for said second polarization is not more than 50% higher than said first diffraction efficiency for said first polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said third diffraction efficiency for said first polarization is not more than 20% higher than said fourth diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said third diffraction efficiency for said first polarization is not more than 30% higher than said fourth diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said third diffraction efficiency for said first polarization is not more than 40% higher than said fourth diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said third diffraction efficiency for said first polarization is not more than 50% higher than said fourth diffraction efficiency for said second polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said fourth diffraction efficiency for said second polarization is not more than 20% higher than said third diffraction efficiency for said first polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said fourth diffraction efficiency for said second polarization is not more than 30% higher than said third diffraction efficiency for said first polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said fourth diffraction efficiency for said second polarization is not more than 40% higher than said third diffraction efficiency for said first polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said fourth diffraction efficiency for said second polarization is not more than 50% higher than said third diffraction efficiency for said first polarization over said range of angles.
The head-mounted display system of any of Examples above, wherein said second diffraction grating with said second and third layers formed thereon comprises a reflective diffraction grating.
The head-mounted display system of any of Examples above, wherein said second diffraction grating with said second and third layers formed thereon comprises a reflective diffraction grating configured to diffract reflected light to couple light into said waveguide to be guided therein by total internal reflection.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 100 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 200 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a height from 300 to 600 nanometers.
The head-mounted display system of any of the Examples above, wherein said diffractive features have a pitch from 290 nm to 690 nm.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises micro-LEDs.
The head-mounted display system of any of the Examples above, wherein said light projection system comprises a DLP or a LCOS display.
The head-mounted display system of any of the Examples above, wherein said substrate includes nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate includes inorganic nanoparticles.
The head-mounted display system of any of the Examples above, wherein said substrate comprises polymer.
A head-mounted display system comprising:
a head-mountable frame;
a light projection system configured to output light to provide image content;
a waveguide supported by the frame, the waveguide comprising a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide;
a first diffraction grating configured to have a first diffraction efficiency for a first polarization over a range of angles of light incident thereon that is greater than a second diffraction efficiency for a second polarization over said range of angles of light incident thereon;
a second diffraction grating, said substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide via said second diffraction grating, the second diffraction grating
configured to have a third diffraction efficiency for the first polarization over a range of angles of light incident thereon and a fourth diffraction efficiency for the second polarization over the range of angles of light incident thereon, the fourth diffraction efficiency being from 1 to 2 times the third diffraction efficiency or the third diffraction efficiency being from 1 to 2 times the fourth diffraction efficiency over the range of angles of light incident thereon;
wherein the first diffraction grating is on a first side of said substrate and the second diffraction grating on a second side of said substrate opposite said first side of said substrate.
A head-mounted display system comprising:
a head-mountable frame;
a light projection system configured to output light to provide image content;
a waveguide supported by the frame, the waveguide comprising a substrate configured to guide at least a portion of the light from said light projection system coupled into said waveguide and to the user's eye;
at least one diffraction grating formed in or on the substrate,
wherein the substrate includes nanoparticles.
The head-mounted display system of Examples 1, wherein said nanoparticles comprise inorganic nanoparticles.
The head-mounted display system of any of the Examples above, wherein said diffraction grating comprises an in-coupling grating.
The head-mounted display system of any of the Examples above, wherein said diffraction grating comprises an out-coupling grating.
The head-mounted display system of any of the Examples above, wherein said waveguide is included in an eyepiece configured to direct light to an eye of a user wearing said head mounted display.
The head-mounted display system of Example 7, wherein said eyepiece is disposed on the frame and is configured to direct light from the light projection system into the eye of the user to display augmented reality image content to the vision field of the user, at least a portion of the eyepiece being transparent and disposed at a location in front of the eye of the user when the user wears the head-mounted display system, where the transparent portion transmits light from a portion of a physical environment in front of the user to the eye of the user to provide a view of the portion of the physical environment in front of the user.
The head-mounted display system of any of the Examples above, wherein said waveguide comprises an in-coupling optical element for coupling light from said light projection system into the waveguide to be guided therein.
The head-mounted display system of any of the Examples above, wherein said substrate comprises polymer.
Any of the above examples in any of the parts may be combined.
In the foregoing specification, the invention has been described with reference to specific embodiments thereof. It will, however, be evident that various modifications and changes may be made thereto without departing from the broader spirit and scope of the invention. The specification and drawings are, accordingly, to be regarded in an illustrative rather than restrictive sense.
Indeed, it will be appreciated that the systems and methods of the disclosure each have several innovative aspects, no single one of which is solely responsible or required for the desirable attributes disclosed herein. The various features and processes described above may be used independently of one another, or may be combined in various ways. All possible combinations and subcombinations are intended to fall within the scope of this disclosure.
Certain features that are described in this specification in the context of separate embodiments also may be implemented in combination in a single embodiment. Conversely, various features that are described in the context of a single embodiment also may be implemented in multiple embodiments separately or in any suitable subcombination. Moreover, although features may be described above as acting in certain combinations and even initially claimed as such, one or more features from a claimed combination may in some cases be excised from the combination, and the claimed combination may be directed to a subcombination or variation of a subcombination. No single feature or group of features is necessary or indispensable to each and every embodiment.
It will be appreciated that conditional language used herein, such as, among others, “can,” “could,” “might,” “may,” “e.g.,” and the like, unless specifically stated otherwise, or otherwise understood within the context as used, is generally intended to convey that certain embodiments include, while other embodiments do not include, certain features, elements and/or steps. Thus, such conditional language is not generally intended to imply that features, elements and/or steps are in any way required for one or more embodiments or that one or more embodiments necessarily include logic for deciding, with or without author input or prompting, whether these features, elements and/or steps are included or are to be performed in any particular embodiment. The terms “comprising,” “including,” “having,” and the like are synonymous and are used inclusively, in an open-ended fashion, and do not exclude additional elements, features, acts, operations, and so forth. Also, the term “or” is used in its inclusive sense (and not in its exclusive sense) so that when used, for example, to connect a list of elements, the term “or” means one, some, or all of the elements in the list. In addition, the articles “a,” “an,” and “the” as used in this application and the appended claims are to be construed to mean “one or more” or “at least one” unless specified otherwise. Similarly, while operations may be depicted in the drawings in a particular order, it is to be recognized that such operations need not be performed in the particular order shown or in sequential order, or that all illustrated operations be performed, to achieve desirable results. Further, the drawings may schematically depict one more example processes in the form of a flowchart. However, other operations that are not depicted may be incorporated in the example methods and processes that are schematically illustrated. For example, one or more additional operations may be performed before, after, simultaneously, or between any of the illustrated operations. Additionally, the operations may be rearranged or reordered in other embodiments. In certain circumstances, multitasking and parallel processing may be advantageous. Moreover, the separation of various system components in the embodiments described above should not be understood as requiring such separation in all embodiments, and it should be understood that the described program components and systems may generally be integrated together in a single software product or packaged into multiple software products. Additionally, other embodiments are within the scope of the following claims. In some cases, the actions recited in the claims may be performed in a different order and still achieve desirable results.
Accordingly, the claims are not intended to be limited to the embodiments shown herein, but are to be accorded the widest scope consistent with this disclosure, the principles and the novel features disclosed herein.
This application claims the benefit of priority under 35 U.S.C. § 119(e) to U.S. Provisional Application No. 62/899,063, filed on Sep. 11, 2019, entitled “DISPLAY DEVICE WITH DIFFRACTION GRATING HAVING REDUCED POLARIZATION SENSITIVITY,” U.S. Provisional Application No. 62/899,673, filed Sep. 12, 2019, entitled “DISPLAY DEVICE WITH DIFFRACTION GRATING HAVING REDUCED POLARIZATION SENSITIVITY,” and U.S. Provisional Application No. 62/902,295, filed Sep. 18, 2019, entitled “DISPLAY DEVICE WITH DIFFRACTION GRATING HAVING REDUCED POLARIZATION SENSITIVITY,” the disclosures of each of which are hereby incorporated by reference herein in its entirety.
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