The present disclosure relates to a waveguide device and an optical engine.
Various types of computing, entertainment, and/or mobile devices can be implemented with a transparent or semi-transparent display through which a user of a device can view the surrounding environment. Such devices, which can be referred to as see-through, mixed reality display device systems, or as augmented reality (AR) systems, enable a user to see through the transparent or semi-transparent display of a device to view the surrounding environment, and also see images of virtual objects (e.g., text, graphics, video, etc.) that are generated for display to appear as a part of, and/or overlaid upon, the surrounding environment. These devices, which can be implemented as head-mounted display (HMD) glasses or other wearable display devices, but are not limited thereto, often utilize optical waveguides to replicate an image to a location where a user of a device can view the image as a virtual image in an augmented reality environment. As this is still an emerging technology, there are certain challenges associated with utilizing waveguides to display images of virtual objects to a user.
Nowadays, many conventional waveguides with diffraction gratings attached thereon have been used. Each of the waveguides and the diffraction gratings attached thereon are used for transmitting a single color. As such, a conventional optical engine for providing projected images to an eye of a user usually requires a plurality of waveguides to transmit three primary colors, which is not conducive to the reduction of weight and thickness of the optical engine. In addition, since the diffraction gratings on the conventional waveguides are required to transmit the projected images with an expanded viewing angle, the efficiency is low.
Accordingly, it is an important issue for the industry to provide an optical engine capable of solving the aforementioned problems.
An aspect of the disclosure is to provide a waveguide device and an optical engine that can efficiently solve the aforementioned problems.
According to an embodiment of the disclosure, a waveguide device includes two holographic optical elements and a waveguide element. Each of the holographic optical elements has a first holographic grating and a second holographic grating. The first holographic grating is configured to diffract light of a first wavelength to propagate with a first diffraction angle. The second holographic grating is configured to diffract light of a second wavelength to propagate with a second diffraction angle. The waveguide element is configured to guide light propagated from one of the holographic optical elements to another of the holographic optical elements.
In an embodiment of the disclosure, the first holographic grating and the second holographic grating are superimposed together.
In an embodiment of the disclosure, each of the holographic optical elements further has a third holographic grating and a fourth holographic grating. The third holographic grating is configured to diffract the light of the first wavelength to propagate with a third diffraction angle. The fourth holographic grating is configured to diffract the light of the second wavelength to propagate with a fourth diffraction angle.
In an embodiment of the disclosure, the third holographic grating and the fourth holographic grating are superimposed together.
In an embodiment of the disclosure, the holographic optical elements are at an identical side of the waveguide element.
In an embodiment of the disclosure, the holographic optical elements are at opposite sides of the waveguide element respectively.
In an embodiment of the disclosure, at least one of the holographic optical elements is a reflective holographic element.
In an embodiment of the disclosure, at least one of the holographic optical elements is a transmissive holographic element.
In an embodiment of the disclosure, the waveguide element is in shape of a cuboid.
In an embodiment of the disclosure, the waveguide element has a first surface and a second surface opposite to the first surface. The first surface has a first portion parallel to the second surface and a second portion inclined relative to the second surface.
In an embodiment of the disclosure, the waveguide element is wedge shaped.
According to an embodiment of the disclosure, an optical engine includes a projector, two holographic optical elements, and a waveguide element. The projector is configured to project light of a first wavelength and light of a second wavelength. Each of the holographic optical elements has a first holographic grating and a second holographic grating. The first holographic grating is configured to diffract the light of the first wavelength to propagate with a first diffraction angle. The second holographic grating is configured to diffract the light of the second wavelength to propagate with a second diffraction angle. The waveguide element is configured to guide light propagated from one of the holographic optical elements to another of the holographic optical elements.
In an embodiment of the disclosure, the light of the first wavelength and the light of the second wavelength projected by the projector enter the waveguide element from the second portion of the first surface.
In an embodiment of the disclosure, the optical engine further includes a beam splitting module optically coupled between the projector and said one of the holographic optical elements.
In an embodiment of the disclosure, said one of the holographic optical elements is a reflective holographic optical element, and the beam splitting module is optically coupled to said one of the holographic optical elements via the waveguide element.
In an embodiment of the disclosure, the beam splitting module comprises a plurality of splitters arranged away from the projector along one dimension.
Accordingly, in some embodiments of the optical engine of the present disclosure, each of the holographic optical elements has a plurality of holographic gratings for diffracting the light of different wavelengths, so full color images can be outputted to a single eye of a user from only one waveguide element, which facilitates the reduction of weight and thickness of the optical engine. Furthermore, in some embodiments of the optical engine of the present disclosure, each of the holographic optical elements has a plurality of holographic gratings for diffracting the light of an identical wavelength to propagate with different diffraction angles, so the viewing angle of the outputted images can be effectively increased. In addition, in some embodiments of the optical engine of the present disclosure, a beam splitting module is optically coupled between the projector and the waveguide element, so images projected by the projector can be expanded in one dimension and thus further increase the viewing angle of the outputted images.
It is to be understood that both the foregoing general description and the following detailed description are by examples, and are intended to provide further explanation of the disclosure as claimed.
The disclosure can be more fully understood by reading the following detailed description of the embodiment, with reference made to the accompanying drawings as follows:
Reference will now be made in detail to the present embodiments of the disclosure, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts. However, specific structural and functional details disclosed herein are merely representative for purposes of describing example embodiments, and thus may be embodied in many alternate forms and should not be construed as limited to only example embodiments set forth herein. Therefore, it should be understood that there is no intent to limit example embodiments to the particular forms disclosed, but on the contrary, example embodiments are to cover all modifications, equivalents, and alternatives falling within the scope of the disclosure.
Reference is made to
In some embodiments, the projector 110 is configured to project red light R, green light G, and blue light B, but the disclosure is not limited in this regard. In some embodiments, the wavelength band of the red light R is from about 622 nm to about 642 nm, but the disclosure is not limited in this regard. In some embodiments, the wavelength band of the green light G is from about 522 nm to about 542 nm, but the disclosure is not limited in this regard. In some embodiments, the wavelength band of the blue light B is from about 455 nm to about 475 nm, but the disclosure is not limited in this regard. In some embodiments, the projector 110 adopts light-emitting diodes to project the red light R, the green light G, and the blue light B. In practical applications, the projector 110 may adopt laser diodes to project the red light R, the green light G, and the blue light B with smaller wavelength band.
Reference is made to
In some embodiments, the first holographic grating 1211a, the second holographic grating 1211b, and the third holographic grating 1211c are superimposed together. As such, the holographic optical element 121a can have a small size.
Reference is made to
In some embodiments, the first holographic grating 1211a, the second holographic grating 1211b, and the third holographic grating 1211c are thin holographic gratings. In some embodiments, the first holographic grating 1211a, the second holographic grating 1211b, and the third holographic grating 1211c are volume holographic gratings. It is notable that light diffracted by a volume holographic grating can propagate with a specific diffraction angle based on the Bragg's law.
In some embodiments, a volume holographic grating can form a transmissive holographic grating or a reflective holographic grating according to different fabrication methods. Specifically, as shown in
In some embodiments, the holographic optical element 121b may also be formed with the first holographic grating 1211a, the second holographic grating 1211b, and the third holographic grating 1211c. As such, portions of the red light R, the green light G, and the blue light B propagating in the waveguide element 122 can be respectively diffracted by the first holographic grating 1211a, the second holographic grating 1211b, and the third holographic grating 1211c of the holographic optical element 121b and then be outputted out of the waveguide device 120 to reach an eye (i.e., the pupil as shown in
In some embodiments, the holographic optical element 121b can also be fabricated as a transmissive holographic element or a reflective holographic element. For example, as shown in
Reference is made to
In some embodiments, the holographic optical element 121a may further has additional holographic gratings other than the second holographic grating 1211b and being configured to diffract light of which the wavelength is 532 nm to propagate with diffraction angles deviated from the second diffraction angle Db (e.g., deviated about 5 degrees, 10 degrees, etc.). In some embodiments, the holographic optical element 121a may further has additional holographic gratings other than the third holographic grating 1211c and being configured to diffract light of which the wavelength is 465 nm to propagate with diffraction angles deviated from the third diffraction angle Dc (e.g., deviated about 5 degrees, 10 degrees, etc.). As such, the viewing angle of the images outputted from the optical engine 100 can be effectively increased. For example, the increased viewing angle may be equal to or greater than 60 degrees.
In some embodiments, all of the holographic gratings mentioned above in the holographic optical element 121a may be superimposed together, so the holographic optical element 121a can have a small size. In some embodiments, the holographic optical element 121b can be formed with holographic gratings therein that are identical or similar to those in the holographic optical element 121a.
Reference is made to
In some embodiments, as shown in
As shown in
In some embodiments, as illustrated by
As shown in
In some embodiments, the projector 110 may be a telecentric system or a non-telecentric system. In some embodiments, the projector 110 may include a DLP (Digital Light Processing) module or a LCOS (Liquid Crystal on Silicon) module.
In some embodiments, the waveguide element 122 can be made of a material having a refractive index from about 1.4 to about 2.2. In some embodiments, the material of the waveguide element 122 may include glass, plastics, or transparent polymers.
According to the foregoing recitations of the embodiments of the disclosure, it can be seen that in some embodiments of the optical engine of the present disclosure, each of the holographic optical elements has a plurality of holographic gratings for diffracting the light of different wavelengths, so full color images can be outputted to a single eye of a user from only one waveguide element, which facilitates the reduction of weight and thickness of the optical engine. Furthermore, in some embodiments of the optical engine of the present disclosure, each of the holographic optical elements has a plurality of holographic gratings for diffracting the light of an identical wavelength to propagate with different diffraction angles, so the viewing angle of the outputted images can be effectively increased. In addition, in some embodiments of the optical engine of the present disclosure, a beam splitting module is optically coupled between the projector and the waveguide element, so images projected by the projector can be expanded in one dimension and thus further increase the viewing angle of the outputted images.
Although the present disclosure has been described in considerable detail with reference to certain embodiments thereof, other embodiments are possible. Therefore, the spirit and scope of the appended claims should not be limited to the description of the embodiments contained herein.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present disclosure without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the present disclosure cover modifications and variations of this disclosure provided they fall within the scope of the following claims.
This application claims priority to U.S. Provisional Application Ser. No. 62/775,393, filed on Dec. 5, 2018, which is herein incorporated by reference.
Number | Date | Country | |
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62775393 | Dec 2018 | US |