Optical components

Information

  • Patent Grant
  • 9423360
  • Patent Number
    9,423,360
  • Date Filed
    Monday, February 9, 2015
    10 years ago
  • Date Issued
    Tuesday, August 23, 2016
    8 years ago
Abstract
The following relates to assessing the quality of an optical component. The optical component comprises an arrangement of a first and a second optically transmissive component grating having a component relative orientation angle, and the quality is assessed in terms of a deviation of the component relative orientation angle from a desired relative orientation angle. A master component comprises a substantially matching arrangement of a first and a second optically transmissive master grating having the desired relative orientation angle. The components are supported with the first and second component gratings in the vicinity of the first and second master gratings, and first and second fringe patterns formed by the first gratings and second gratings respectively are used to output a quality assessment, which is based on the fringe spacing of the second fringe pattern when the fringe spacing of the first fringe pattern is substantially maximal.
Description
BACKGROUND

Optical components can be used in optical systems to alter the state of visible light in a predictable and desired manner, for example in display systems to make a desired image visible to a user. Optical components may also be used as e.g. moulds for making other optical components. Optical components can interact with light by way of reflection, refraction, diffraction etc. Diffraction occurs when a propagating wave interacts with a structure, such as an obstacle or slit. Diffraction can be described as the interference of waves and is most pronounced when that structure is comparable in size to the wavelength of the wave. Optical diffraction of visible light is due to the wave nature of light and can be described as the interference of light waves. Visible light has wavelengths between approximately 390 and 700 nanometers (nm) and diffraction of visible light is most pronounced when propagating light encounters structures similar scale e.g. of order 100 or 1000 nm in scale. One example of a diffractive structure is a periodic diffractive structure. Periodic structures can cause diffraction of light which is typically most pronounced when the periodic structure has a spatial period of similar size to the wavelength of the light. Types of periodic structures include, for instance, surface modulations on a surface of an optical component, refractive index modulations, holograms etc. Herein, a “diffraction grating” (or simply “grating”) means any (part of) an optical component which has a diffractive periodic structure. A diffraction grating has a grating period, which is the distance over which its structure repeats. When propagating light encounters the periodic structure, diffraction causes the light to be split into multiple beams in different directions. These directions depend on the wavelength of the light thus diffractions gratings cause dispersion of polychromatic (e.g. white) light, whereby the polychromatic light is split into different coloured beams travelling in different directions.


When the period structure is on a surface of an optical component, it is referred to a surface grating. When the periodic structure is due to modulation of the surface itself, it is referred to as a surface relief grating (SRG). An example of a SRG is uniform straight grooves in a surface of an optical component that are separated by uniform straight groove spacing regions. Groove spacing regions are referred to herein as “lines”, “grating lines” and “filling regions”. The nature of the diffraction by a SRG depends both on the wavelength of light incident on the grating and various optical characteristics of the SRG, such as line spacing, groove depth and groove slant angle. SRGs have many useful applications. One example is an SRG light guide application. A light guide (also referred to herein as a “waveguide”) is an optical component used to transport light by way of internal reflection e.g. total internal reflection (TIR) within the light guide. A light guide may be used, for instance, in a light guide-based display system for transporting light of a desired image from a light engine to a human eye to make the image visible to the eye.


In the case of a waveguide-based display system, different gratings forming part of the same waveguide may serve various functions. Waveguide-based display systems typically comprise a light engine, which collimates light of an image into collimated input beams which form a virtual version of that image at infinity. The input beams may be directed towards an incoupling grating of the waveguide, which is arranged to couple them into the waveguide at angles which are sufficiently steep to cause TIR of the incoupled beams within the waveguide. An outcoupling (exit) grating on the waveguide may receive the incoupled beams internally and diffract them outwardly in directions that match the input beams (so that they form the same virtual version of the image). A user's eye can then reconstruct the image when looking at the exit grating. Usually, the exit grating is also arranged to provide beam expansion of the outputted beams so as to provide an eyebox of increased size compared with viewing the light engine directly. Intermediate grating(s) of the same waveguide may provide additional beam expansion to further increase the size of the eyebox.


For some such waveguide grating arrangements, the incoupling, outcoupling and (where applicable) intermediate grating(s) will only manipulate the image light as intended if their various gratings are oriented relative to one another in a specific manner. Deviation from this intended orientation can cause degradation of the final image as perceived by the user. When such waveguides are manufactured in bulk for incorporation in different waveguide display systems, each should preserve these specific relationships to avoid degrading the quality of the final display systems. Other types of optical component with various applications may also comprise different gratings where it is desirable for the relative orientation of those gratings to match a desired value as closely as possible.


SUMMARY

This Summary is provided to introduce a selection of concepts in a simplified form that are further described below in the Detailed Description. This Summary is not intended to identify key features or essential features of the claimed subject matter, nor is it intended to be used to limit the scope of the claimed subject matter. Nor is the claimed subject matter limited to implementations that solve any or all of the disadvantages noted in the Background section.


The disclosure considers an optical component comprising an arrangement of a first and a second component grating having a component relative orientation angle. The quality of the optical component is assessed in terms of a deviation of the component relative orientation angle from a desired relative orientation angle. A quality assessment is made by comparing the optical component to a master component comprising a substantially matching arrangement of a first and a second optically transmissive master grating having the desired relative orientation angle.


When the optical and master components are supported with the first and second component gratings in the vicinity of the first and second master gratings, a first fringe pattern is formed by the first gratings as their relative orientation angle (first relative orientation angle) is changed towards zero, the fringe spacing of which increases as that first relative orientation angle decreases. Similarly, a second fringe pattern is formed by the second gratings as their relative orientation angle (second relative orientation angle) is changed towards zero, the fringe spacing of which also increases as that second relative orientation angle decreases. The disclosure recognizes that, when the fringe spacing of the first fringe pattern is substantially maximal (the first relative orientation angle thus being substantially zero), the fringe spacing of the second fringe pattern—which is indicative of the second relative orientation angle in general—is also indicative of the deviation of the component relative orientation angle from the desired relative orientation angle (as this deviation is substantially equal to the second relative orientation angle when the first relative orientation angle is substantially zero), and is thus indicative of the quality of the optical component.


A first aspect is directed to a quality assessment apparatus for assessing the quality of such an optical component. The apparatus comprises a configurable support system, a light sensor, a drive mechanism and a controller. The support system is configured to support such an optical and such a master component with the first and second component gratings of the optical component in the vicinity of the first and second master gratings of the master component. The light sensor is configured to receive light which has interacted with both of the first and light which has interacted with both of the second gratings, and to generate sensor data from the received light. The drive mechanism is coupled to the support system. The controller is configured to control the drive mechanism based on the sensor data to reconfigure the support system from a current configuration to a new configuration in which the fringe spacing of a first fringe pattern formed by the first gratings is substantially maximal. In addition, the controller is configured to measure from the sensor data the fringe spacing of a second fringe pattern formed by the second gratings in the new configuration, and to output a quality assessment based on the measured fringe spacing which is indicative of the deviation of the component relative orientation angle from the desired relative orientation angle.


Second and third aspects are directed to a quality assessment process, and a computer program product comprising code configured, when executed, to implement that process. Such an optical component and such a master component are supported by a configurable support system with the first and second component gratings of the optical component in the vicinity of the first and second master gratings of the master component. The process comprises the following. Sensor data is received, the sensor data generated from light which has interacted with both of the first gratings and light which has interacted with both of the second gratings. The support system is reconfigured based on the sensor data from a current configuration to a new configuration, in which the fringe spacing of a first fringe pattern formed by the first gratings is substantially maximal. The fringe spacing of a second fringe pattern formed by the second gratings in the new configuration is measured from the sensor data. A quality assessment is outputted based on the measured fringe spacing which is indicative of the deviation of the component relative orientation angle from the desired relative orientation angle.





BRIEF DESCRIPTION OF FIGURES


FIG. 1A is a frontal view of an optical component;



FIG. 1B is a schematic illustration of an optical component, shown interacting with incident light and viewed from the side;



FIG. 2A is a schematic illustration of a straight binary grating, shown interacting with incident light and viewed from the side;



FIG. 2B is a schematic illustration of a slanted binary grating, shown interacting with incident light and viewed from the side;



FIG. 2C is a schematic illustration of an overhanging triangular grating, shown interacting with incident light and viewed from the side;



FIG. 3A is a frontal view of an optical component comprising an arrangement of gratings;



FIG. 3B is a frontal view of a master component comprising a substantially matching arrangement of gratings;



FIG. 4A is a perspective view of the optical component and the master component during a quality assessment process;



FIG. 4B shows fringe patterns observed at different points in time during the quality assessment process;



FIG. 5 is a block diagram of a quality assessment apparatus.





DETAILED DESCRIPTION


FIGS. 1A and 1B show from the top and the side respectively an optical component 2, such as a waveguide or a mould for making other optical components, having an outer surface S. The optical component is optically transmissive in this embodiment, but may not be optically transmissive in other embodiments. The optical component 4 comprises a grating 4, formed by (that is, whose periodic structure arises as a result of) surface modulations over the surface S, which constitute a surface grating (specifically, an SRG). The modulations comprise grating lines which are substantially parallel and elongate (substantially longer than they are wide), and also substantially straight in this example (though they need not be straight in general).



FIG. 1B shows the optical component 2, and in particular the grating 4, interacting with an incoming illuminating light beam I that is inwardly incident on the grating 4. The light I is white light in this example, and thus has multiple colour components. The light I interacts with the grating 4 which splits the light into several beams directed inwardly into the optical component 2. Some of the light I may also be reflected back from the surface S as a reflected beam R0. A zero-order mode inward beam T0 and any reflection R0 are created in accordance with the normal principles of diffraction as well as other non-zero-order (±n-order) modes (which can be explained as wave interference). FIG. 1B shows first-order inward beams T1, T−1; it will be appreciated that higher-order beams may or may not also be created depending on the configuration of the optical component 2. Because the nature of the diffraction is dependent on wavelength, for higher-order modes, different colour components (i.e. wavelength components) of the incident light I are, when present, split into beams of different colours at different angles of propagation relative to one another as illustrated in FIG. 1B.



FIGS. 2A-2C are close-up schematic cross sectional views of different exemplary gratings 4a-4c (collectively referenced as 4 herein), formed by modulations of the surface S of the optical component 2 (which is viewed from the side in these figures). Light beams are denoted as arrows whose thicknesses denote approximate relative intensity (with higher intensity beams shown as thicker arrows).



FIG. 2A shows an example of a straight binary grating 4a. The straight binary grating 4a is formed by a series of grooves 7a in the surface S separated by protruding groove spacing regions 9a which are also referred to herein as “filling regions”, “grating lines” or simply “lines”. The grating 4a has a spatial period of d (referred to as the “grating period”), which is the distance over which the modulations' shape repeats. The grooves 7a have a depth h and have substantially straight walls and substantially flat bases. As such, the filling regions have a height h and a width that is substantially uniform over the height h of the filling regions, labelled “w” in FIG. 2A (with w being some fraction f of the period: w=f*d).


For a straight binary grating, the walls are substantially perpendicular to the surface S. For this reason, the grating 4a causes symmetric diffraction of incident light I that is entering perpendicularly to the surface, in that each +n-order mode beam (e.g. T1) created by the grating 4a has substantially the same intensity as the corresponding −n-order mode beam (e.g. T−1), typically less than about one fifth (0.2) of the intensity of the incident beam I.



FIG. 2B shows an example of a slanted binary grating 4b. The slanted grating 4b is also formed by grooves, labelled 7b, in the surface S having substantially straight walls and substantially flat bases separated by lines 9b of width w. However, in contrast to the straight grating 4a, the walls are slanted by an amount relative to the normal, denoted by the angle α in FIG. 2B. The grooves 7b have a depth h as measured along the normal. Due to the asymmetry introduced by the non-zero slant, ±n-order mode inward beams travelling away from the slant direction have greater intensity that their + n-order mode counterparts (e.g. in the example of FIG. 2B, the T1 beam is directed away from the direction of slant and has usually greater intensity than the T−1 beam, though this depends on e.g. the grating period d); by increasing the slant by a sufficient amount, those +n counterparts can be substantially eliminated (i.e. to have substantially zero intensity). The intensity of the T0 beam is typically also reduced very much by a slanted binary grating such that, in the example of FIG. 2B, the first-order beam T1 typically has an intensity of at most about four fifths (0.8) the intensity of the incident beam I.


The binary gratings 4a and 4b can be viewed as being formed by spatial waveforms embedded in the surface S that have a substantially square wave shape (with period d). In the case of the grating 4b, the shape is a skewed square wave shape skewed by α.



FIG. 2C shows an example of an overhanging triangular grating 4c which is a special case of an overhanging trapezoidal grating. The triangular 4c is formed by grooves 7c in the surface S that are triangular in shape (and which thus have discernible tips) and which have a depth h as measured along the normal. Filling regions 9c take the form of triangular, tooth-like protrusions (teeth), having medians that make an angle α with the normal (α being the slant angle of the grating 4c). The teeth have tips that are separated by d (which is the grating period of the grating 4c), a width that is w at the base of the teeth and which narrows to substantially zero at the tips of the teeth. For the grating of FIG. 4c, w≈d, but generally can be w<d. The grating is overhanging in that the tips of the teeth extend over the tips of the grooves. It is possible to construct overhanging triangular grating gratings that substantially eliminate both the transmission-mode T0 beam and the + n-mode beams, leaving only ±n-order mode beams (e.g. only T1). The grooves have walls which are at an angle γ to the median (wall angle). The grating 4c can be viewed as formed by a spatial waveform embedded in S that has a substantially triangular wave shape, which is skewed by α.


The grooves and spacing regions that form the gratings 4a-4c constitute surface modulations.


Other type of grating are also possible, for example other types of trapezoidal grating patterns (which may not narrow in width all the way to zero), sinusoidal grating patterns etc. and have a modulation width that can be readily defined in a suitable manner. Such other patterns also exhibit depth h, linewidth w, slant angle α and wall angles γ which can be defined in a similar manner to FIG. 2A-C.


A grating 4 has a grating vector (generally denoted as d), whose size (magnitude) is 2π/d, and which is in a direction perpendicular to the grating lines which form that grating—see FIG. 1A.


In light guide-based display applications (e.g. where SRGs are used for coupling of light into and out of a light guide of the display system, and/or for providing beam expansion of beams coupled into the waveguide), d is typically between about 250 and 500 nm, and h between about 30 and 400 nm. The slant angle α is typically between about −45 and 45 degrees and is measured in the direction of the grating vector.



FIG. 3A shows a frontal view of an optical component 2C. The optical component 2C is of the general type described above, and comprises a fixed arrangement of a first and a second component grating 4iC, 4iiC, which can be of any of the general types discussed above. Herein, a fixed arrangement of gratings means that at least the orientation of those gratings relative to one another is fixed. The gratings 4iC, 4iiC are optically transmissive parts of the optical component 2C; that is, at least those parts are formed of optically transmissive material that allows at least some light to pass through the component gratings 4iC, 4iiC (all the way through the optical component 2C) in a direction generally normal to the gratings (parallel to the z-axis shown in FIG. 3A). In this example, the gratings 4iC, 4iiC lie substantially parallel to the same plane (xy-plane). The gratings 4iC, 4iiC are formed by surface modulations (specifically, lines and grooves) over respective portions of the optical component's surface, each lying substantially parallel to the xy-plane. The surface modulations are on frontal surface portions of the optical component 2C from the viewpoint of FIG. 3 (in alternative optical component 2C, one of the gratings may be formed by reward surface modulations on a rear surface portion instead).


The optical component 2C may be a mass-produced optical components (that is, one of a large number of optical components produced in bulk e.g. in a factory set-up), in which for example the optical component 2C is moulded from polymer.


As indicated above, in various applications, it is desirable for different gratings of the same optical component to have orientations relative to one another that match a desired orientation as closely as possible (e.g. some idealized relationship, at which the performance of the optical component is optimized with respect to its intended functions, which may be revealed though a suitable mathematical analysis).


For example, in one type of known display system—in which an incoupling, intermediate and exit grating of an optical component (which acts as a waveguide) function in tandem to cause two-dimensionally expanded versions of beams incoupled at the incoupling grating to be outputted at the exit grating—the incoupling and exit gratings should have a relative orientation angle 2ρ (i.e. relative to one another) which is double that of the incoupling and intermediate gratings (itself ρ). Moreover, that relative orientation angle ρ of the incoupling and intermediate gratings (i.e. relative to one another) should have a specific relationship with the grating periods d1, d2 of the incoupling and intermediate gratings, namely ρ=arccos(d1/(2d2)). Deviation from these relationships can cause degradation in the quality of the final image as perceived by the user. Hence, the relationships should be preserved as closely as possible to ensure that the waveguide does not significantly degrade the image.


However, in practice and particularly in the context of mass-manufacturing, it can be difficult to ensure that all such optical components are manufactured to the same standard of quality. Various inaccuracies and imprecisions can develop in the manufacturing set-up which can cause degradation of the final products. Such inaccuracies and imprecisions can be difficult to detect, and become increasingly so as the scale of the manufacturing operation is increased. Of particular concern in the present context is degradation in the form of misalignment of different gratings on the same optical component.


Hereinbelow, techniques are presented which facilitate an automatic quality assessment that is both quick and reliable, in which the quality of an optical component (e.g. 2C) comprising at least two gratings (e.g. 4iC, 4iiC) is assessed in terms of a deviation of their actual relative orientation (relative to one another) from a desired relative orientation e.g. that at which the performance of the optical component 4C is optimized with respect to its intended function.


To this end, a comparison is made between the optical component 2C and a high-quality master component 2M, which is itself a high-quality optical component but the nature of which may make it unsuitable for use in mass-manufactured end-products (e.g. because to do so would be too costly and/or time-consuming). The master component 2M is shown in FIG. 3B.


As shown in FIG. 3B, the master component 2M comprises a fixed arrangement of gratings, which are first and second master gratings 4iM, 4iiM, also of the general type discussed above and which are optically transmissive in the same manner as the component gratings 4iC, 4iiC (though in other embodiments they may not be optically transmissive). The grating arrangement of the master component 2M substantially matches the grating arrangement of the optical component 2C; that is, the master grating arrangement is such that the master gratings 4iM, 4iiM have approximately (though not necessarily exactly) the same orientation relative to one another as the component gratings 4iC, 4iiC, the first master grating 4iM (resp. second master grating 4iiM) substantially matches the first component grating 4iC (resp. second component grating 4iiC) and, moreover, when the master component 2M is placed at a location forward of the optical component 2C at which at least part of the first component grating 4iC is observable through the first master grating 4iM, at least part of the second component grating 4iiC is observable through the second master grating 4iiM at the same time. Note that “observable” in this context simply means that there exists a line of sight in the general ±z-direction that intersects both first gratings 4iC, 4iM (resp. both second gratings 4iiC, 4iiM), along which light can propagate through both components 2C, 2M so as to interact with both first gratings 4iC, 4iM (resp. both second gratings 4iiC, 4iiM), which light is detectable upon exiting the components 2C, 2M having interacted thus. In this case, the master component 2M of FIG. 3A, the master gratings 4iM, 4iiM also lie substantially parallel to the xy-plane when the optical and master components 2C, 2M are suitably aligned relative to one another.


The master component 2M may have substantially the same overall shape as the optical component 2C and/or substantially the same overall optical characteristics, though this is not required.


The master component 2M may, for instance, be formed of fused silica or some other suitable material that has been subject to a microfabrication process, in which the master gratings 4iM, 4iiM are formed by etching of and/or deposition on the surface of the material. Using such microfabrication processes, it is possible to create master gratings 4iM, 4iiM having the desired relative orientation to a very high level of accuracy (i.e. of very high quality, as the term is used herein), which can be verified by performing suitable tests on the master gratings to measure the relative orientation of the master gratings to ensure that it is indeed precisely the desired orientation and/or by testing the optical characteristics of the master gratings to ensure that the master component functions in same the manner in which the to-be-tested optical components are intended to function. Such tests, whilst generally accurate, tend to be costly and time-consuming, and thus not suitable per-se for application to mass-produced optical components. However, once it has been verified that the master component 2M is of the requisite high quality, as indicated, the quality of such mass-manufactured optical components (e.g. 2C) can be assessed quickly and reliably by way of comparison with the master component 2M in the manner set out below.


Returning to FIG. 3A, the first component grating has a grating vector diC (first component grating vector) and the second component has a second grating vector diiC (second component grating vector), each parallel to the respective grating lines of the relevant grating and lying in the plane of that grating. An angle ΔφC is shown, which is the angle between the component grating vectors diC, diiC as measured in the xy-plane and which is referred to herein as the relative orientation angle of the first and second component gratings 4iC, 4iiC or simply as the “component relative orientation angle”—it is this angle which is intended to precisely match a desired relative orientation angle, and the processes described herein provide an automatic assessment of the extent to which that match has been realized in practice.


Returning to FIG. 3B, the first master grating has a grating vector diM (first master grating vector) and the second component has a second grating vector diiM (second master grating vector), each perpendicular to the respective grating lines of the relevant grating and lying in the plane of that grating. An angle ΔφM is shown, which is the angle between the master grating vectors diM, diiM as measured in the xy-plane and which is referred to herein as the relative orientation angle of the first and second master gratings 4iM, 4iiM—it is this angle which is known to be the desired relative orientation angle to a high level of precision, and the quality of the (e.g. mass-produced) optical component 4C is assessed in terms of the size of a deviation of ΔφC from ΔφM i.e. in terms of |ΔφC−ΔφM|. When this deviation is substantially zero, the quality of the optical component 2C is considered to be optimal.


The optical and master components each comprise respective alignment marks 12C, 12M shown in FIGS. 3A and 3B respectively. The alignments marks are arranged such that, when the master component 2M is moved forward of the optical component 2C to bring the master marks of 12C into alignment with the component marks 12M when viewed in the z-direction, the first master grating 4iM is at least approximately aligned (by angle) with the first component grating 4iC. This is discussed below.


A quality assessment process will now be described with reference to FIGS. 4A and 4B.



FIG. 4A is a perspective view of the master and optical components 2M, 2C during the process, in which the xy-plane 3 is shown. The master component 12M is supported forward of the optical component 12C and substantially parallel to the xy-plane, with the first component grating 4iC opposing the first master grating 4iM, and the second component grating 4iiC opposing the second master grating 4iiM. In this configuration, the first gratings 4iC, 4iM lie substantially parallel to the same plane as one another (which is the xy-plane 3), and the second gratings 4iiC, 4iiM also lie substantially parallel to the same plane as one another (which is also the xy-plane 3).


The respective geometric projections of the component grating vectors diC, diiC and master grating vectors diM, diiM in the xy-plane 3 are shown. Note that herein (including in the figures), the notation diC, diiC, diM, diiM is used interchangeably to denote both the grating vectors themselves and the geometric projections of the grating vectors in the xy-plane, and it will be clear from the context which is meant. For the sake of clarity, the master projections diM, diiM are represented by thicker arrows than the component projections diC, diiC in FIG. 4A.


In addition to the relative orientation angle ΔφC of the first and second component gratings 4iC, 4iiC (which is an inherent property of the optical component 2C) and the relative orientation angle ΔφM of the first and second master gratings 4iM, 4iM (which is an inherent property of the master component 2M), an angle Δφi is shown, which is the angle between the first master grating vector diM and the first component grating vector diC as measured in the xy-plane 3, and which is referred to herein as the relative orientation angle of the first gratings 4iM, 4iC or simply as the “first relative orientation angle”. Another angle Δφii is shown, which is the angle between the second master grating vector diiM and the second component grating vector diiC as measured in the xy-plane, and which is referred to herein as the relative orientation angle between the second gratings 4iiM, 4iiC or simply as the “second relative orientation angle”. The angles Δφi, Δφii are properties of the current orientation of the optical component 2C relative to the master component 2M, and change as that orientation is changed.


A first line of sight (LOS1) is shown, which lies substantially parallel to the z-axis and which intersects both the first gratings 4iC, 4iM of the optical and master components 2C, 2M respectively. A second line of sight (LOS2) is shown, which also lies substantially parallel to the z-axis but which intersects both the second gratings 4iiC, 4iiM of the optical and master components 2C, 2M respectively.


The disclosure recognizes that, when the optical component 2C and the master component 2M are held in a relative xy-orientation such that the first relative orientation angle Δφi of the first gratings 4iC, 4iM is substantially zero (substantially perfect alignment)—which can be achieved by effecting xy-rotation of one or both of the master and optical component 2M, 2C—the size of the second relative orientation angle |Δφii| of the second gratings 4iiC, 4iiM will be substantially equal to |ΔφC−ΔφM| i.e. the size of the deviation of the component relative orientation angle ΔφC of the component gratings 4iC, 4iiC from the desired relative orientation angle ΔφM that separates the master gratings 4iM, 4iiM, which as discussed above is precisely the quantity that is indicative of the quality of the optical component 2C. The size of the second relative orientation angle at a point in time when Δφi=0 is denoted |Δφii|Δφi=0=|ΔφC−ΔφM|. When |Δφii|Δφi=0=|ΔφC−ΔφM|=0, the optical component 2C is considered to have optimal quality, with larger |Δφii|Δφi=0=|ΔφC−ΔφM| being considered lower quality.


In changing the relative xy-orientation of the two components 2C, 2M, the orientation ΔφC of the component gratings 4iC, 4iiC relative to one another is unchanged, as is the orientation ΔφM of the master gratings 4iM, 4iiM relative to one another (these being inherent properties of the respective components). In contrast, what is changed is the orientation of the component gratings relative to the master gratings—in particular the orientation Δφi of the first component grating 4iC relative to the first master grating 4iM, and the orientation of the Δφii of the second component grating 4iC relative to the second master grating 4iM, which are each changed by substantially the same amount when the xy-orientation of the components 2C, 2M is changed from a current xy-orientation to a new xy-orientation.


The disclosure further recognizes that, when the first gratings are in near, but not perfect alignment—e.g. about (5/100)°≦Δφi≦about (1/1000)° (near alignment range)—a first fringe pattern will be visible along the first line of sight LOS1, that pattern formed by light which has propagated through or been reflected from, and which has thus interacted with, both first gratings 4iC, 4iM, which are effectively overlaid on one another when viewed along the first line of sight LOS1. The first fringe pattern exhibits a fringe spacing that increases as Δφi decreases, becoming maximal (theoretically infinite) when Δφi=0. When Δφi is within approximately the aforementioned approximate near alignment range, the fringe spacing will be measurable i.e. such that the fringes are neither too small nor too large to be undetectable. For example, when Δφi≈(5/1000)°, the fringe pattern will typically have a fringe spacing around 2 mm, which is readily observable. The period of the fringe pattern is ≈d/Δφ (the approximation is very accurate with small angles), with d the grating period and Δφ in radians. The fringes appear perpendicular to the grating lines.


Eventually, as Δφi tends towards zero, it will become sufficiently small that the fringes become larger than the surface area of the first gratings (or at least larger than a portion that area if only that portion is being observed). Typically, this will occur around Δφi≈(1/1000)°, at which point the fringe spacing is considered substantially maximal and Δφi substantially zero—by adjusting the relative xy-orientation alignment of the optical and master component 2C, 2M from an initial configuration to the point at which that substantially maximal fringe spacing is reached (new configuration), it is thus possible to align the first gratings 4iC, 4iM to that level of accuracy. Moreover, when the first gratings 4iC, 4iM are thus aligned in the new configuration with Δφi substantially zero, provided |Δφii|Δφi=0 is itself with the aforementioned approximate near alignment range, a second fringe pattern will also be visible along the second line of sight LOS2, formed in an equivalent manner by light which has passed through or reflected from the surfaces with gratings and thus interacted with both of the second gratings 4iiC, 4iiM, which are similarly effectively overlaid on one another when viewed along the second line of sight LOS2. The larger the fringe spacing of the second fringe pattern in the new configuration, the smaller |Δφii|Δφi=0=|ΔφC−ΔφM|. That is, the larger the fringe spacing of the second fringe pattern in the new configuration, the higher the quality of the optical component 2C i.e. the smaller the deviation of the component relative orientation angle φC between the two component gratings 4iC, 4iiC from the desired relative orientation angle φM between the corresponding master gratings 4iM, 4iiM.


This is illustrated in FIG. 4B, which shows exemplary first and second fringe patterns as visible over an area 7 (also shown in FIG. 4A), as viewed generally along the lines of sight LOS1, LOS2. The fringe patterns are shown in FIG. 7B at various points in time during the quality assessment process.


The far-left hand side of FIG. 4B shows a view of the area 7 when the components 2C, 2M are in an initial configuration, in which the first gratings 4iC, 4iM of the optical and master component 2C, 2M are in near alignment. In this example, the initial configuration is achieved by aligning the alignment marks 12C of the optical component 2C with the corresponding alignment marks 12M of the master component 2M as viewed in a direction generally parallel to the z-axis (intermediate configuration), which alignment marks 12C, 12M are such that, when so aligned in the intermediate configuration, Δφi is within the aforementioned approximate near alignment range. The optical component 2C can be provided with the alignments 12M marks at the time of its manufacturing process (e.g. for a moulded optical component, alignment mark structure can be included on the same mould from which the grating structure is imparted). Typically, the nature of the manufacturing process in question means that, notwithstanding potential imprecisions/inaccuracies of the kind being tested for by the present process, it is possible to provide suitable alignment marks that can be used to achieve such near alignment within the near alignment range.


Alternatively, the process may be performed without alignment marks, and the xy-orientation of the two components 2C, 2M can simply be scanned from any arbitrary starting point until the first fringe pattern becomes visible (such scanning could also be used if, for some reason, Δφi is not in fact within the approximate near alignment range even when such alignment marks are so aligned e.g. due to unexpectedly large manufacturing errors). Typically, the use of alignment marks reduces the time it takes to make the quality assessment, which can be particularly significant in terms of the overall efficiency of the process when there are a large number of optical components to be assessed.


Once near alignment of the first gratings 4iC, 4iM has been so achieved, the xy-orientation of the component 2C, 2M is fine tuned to a new configuration in which the fringe spacing of the first fringe pattern (indicated by a distance labelled D in FIG. 4B) is substantially maximal and thus in which Δφi≈0—this is shown on the far right of FIG. 4B. The intervening views of FIG. 4B represent the changing view as the components 2M, 2C are moved to change their xy-orientation from the initial configuration on the far-left to the new configuration on the far-right. The fringe spacing of the second fringe pattern (indicated by a distance labelled D′ in FIG. 4B) in the new configuration can then be measured, and the measured fringe spacing used to output a quality assessment, with the quality assessment indicating lower (resp. higher) quality the smaller (resp. larger) the measured fringe spacing.


Should the fringe spacing of the second fringe pattern in the new configuration be substantially zero (i.e. should both the fringe spacing of the first fringe pattern and the fringe spacing of the second fringe pattern be substantially zero simultaneously), that indicates there to be substantially no deviation of φC from φM and that the optical component 2C is thus of substantially optimal quality.


Although FIG. 4A shows the fringe patterns as having been created by light which has passed though both gratings by way of example, it is not required that light passes through both plates (thus the optical components do not have to be optically transmissive) for the fringe patterns to appear so the gratings—the patterns can be formed of reflected light (e.g. light of reflective diffraction modes). In practice the fringe patterns are usually most visible when the light is reflected from the surfaces of the gratings as compared with a situation in which the light passes through both.



FIG. 5 is a block diagram of the quality assessment apparatus 1, which comprises a controller 20, a drive mechanism 22, a configurable support system 24 and a sensor 6 (which is also shown in FIG. 4A, disposed along the lines of sight LOS1, LOS2).


The configurable support system 24 supports the optical and master components 2C, 2M in a configurable configuration. The system 24 can be configured to effect relative motion between the two components 2C, 2M to align the alignment marks 12C, 12M, and moreover to effect the subsequent fine-tuning—that is, to change at least the xy-orientation of the master and component to vary Δφi and Δφii in the manner described above. The drive mechanism 22 is coupled to the support system 24, and is controllable to change the configuration of the system 24 in a controlled manner.


The light sensor 22 receives light from (senses) the first gratings 2iM, 2iC and from the second gratings 2iiM, 2iiC, and in particular from the second fringe patterns described above, from which it generates sensor data that is received by the controller 20.


Based on the received sensor data, the controller 20 controls the drive mechanism 22 to reconfigure the configuration of the components 2C, 2M until the sensor data indicates that the substantially maximal fringe spacing D of the first fringe pattern has been achieved. The controller 20 also measures from the sensor data the fringe spacing D′ at that point in time. Based on this measured fringe spacing, the controller 20 outputs a suitable quality assessment e.g. to an operator of the apparatus 1 via a user interface of the controller 20, or to some other component of the apparatus 1 (not shown) e.g. computer storage, in which the assessment is stored for later use.


The sensor 6 may also capture light of (that is, sense) the alignment marks 12C, 12M, and the controller 20 may—prior to performing the fine tuning reconfiguration—perform an initial reconfiguration to achieve alignment of the alignment marks 12C, 12M based on sensor data pertaining to the alignment marks as received from the sensor 6. For example, the sensor 6 may capture images of the marks 12C, 12M, on which image recognition is performed to detect those marks and to identify when the detected marks are aligned.


The controller 20 can be implemented as code executed on a suitable processor.


In practice, visibility of the fringe pattern can be increased by suitable illumination of the apparatus. For instance, to enhance the visibility of the fringe pattern, a laser (not shown) may be used to provide a beam that is directed towards the gratings 4iC, 4iM, 4iiC, 4iiM so that part passes though both the first gratings 4iC, 4iM and another part through both the second gratings 4iiC, 4iiM. A beam expander (not shown) may be used to expand the beam before reaching the gratings 4iC, 4iM, 4iiC, 4iiM, so as to increase the size of the area (e.g. 7) over which the visibility is enhanced. For example, the beam may be expanded to encompass the gratings 4iC, 4iM, 4iiC, 4iiM to provide the enhanced visibility of the fringe patterns over the full extent of the gratings 4iC, 4iM, 4iiC, 4iiM.


In a first embodiment, the sensor 6 comprises an image sensing component in the form of a camera, which supplies images of at least the area 7 to the controller 20 (such images capturing views of the type shown in FIG. 4B). The controller comprises an image recognition module which performs an automatic image recognition procedure on the received images to detect the fringes of the fringe patterns when captured in the images. The controller adjusts Δφi until the results of the image recognition procedure indicate that the fringe spacing D of the first fringe pattern is substantially maximal, and then measures the fringe spacing D′ of the second fringe pattern at that point in time, again based on the results of the image recognition procedure.


The fringe spacing can be so measured in various different ways, for instance in terms of a spatial period-type metric (which is D′ in FIG. 4B) or a spatial frequency-type metric e.g. by counting the number of fringes visible within a predetermined distance (lower frequency indicating larger fringes thus higher quality).


In a second embodiment, the sensor 6 comprises a first and a second photodiode (or other suitable first and second sensor components), which are shielded from surrounding light but for a respective small pinhole—e.g. having a diameter ˜1 mm (order of magnitude)—through which only a small portion of the first and second fringe pattern is observable respectively. That is, such that the only light received by the first (resp. second) photodiode is from a small portion of the first (resp. second) fringe pattern the size of the respective pinhole, so that once the relevant gratings are in near alignment, the fringes are larger than the pinhole. The controller 20 then changes the xy-orientation of the component 2C, 2M, e.g. at a uniform rate. As the gratings (4iC, 4iM/4iiC, 4iiM) are brought into alignment, the fringe spacing of the relevant fringe pattern increases, which effectively results in movement of those fringes (this is evident in FIG. 4D). Thus the intensity of the light received by the photodiodes oscillates between high (when only part of a light fringe is observable through the pinhole) and low (when only part of a dark fringe is perceivable through the pinhole) as the xy-orientation of the components 2C, 2M is changed. As the fringe spacing increases, the rate of this oscillation will decrease due to the light and dark fringes becoming progressively larger so that the rate of oscillation observed by the first photodiode through the first pinhole is minimal as Δφi becomes substantially zero—in the second embodiment, the controller adjusts the xy-orientation until that minimum rate of oscillation is achieved, and measures the fringe spacing D′ of the second fringe pattern in terms of the rate of oscillation observed by the second photodiode through the second pinhole at a point in time at which that minimum rate of oscillation as observed by the first photodiode through the first pinhole is achieved.


The rate of oscillation can be so measured in various different ways, for instance in terms of a temporal period-type metric e.g. obtained by timing individual oscillations or temporal frequency-type metric e.g. obtained by counting the number of oscillations that occur over an interval of predetermined length.


As mentioned, the optical component can be a mould for making other optical components. Moulds are needed in large quantities because the end product is needed in very high quantities. Thus it's also useful to have a quick method for analysing moulds.


The quality assessment outputted by the controller can take a number of forms. For example, the controller may simply output a value of the second pattern fringe spacing D′ as measured at a point in time when the fringe spacing D of the first pattern is substantially zero (e.g. expressed as a measured spatial period, spatial frequency, temporal period, temporal frequency etc.) as this is directly indicative of the quality of the component. Alternatively, the controller could compute some suitable quality metric based on the measured fringe spacing, for example in the simplest case a binary metric that can take one of two values, one of which indicates acceptable quality (when the measured fringe spacing is above a predetermined threshold) and the other unacceptable quality (when the measured fringe spacing is below that threshold), though more complex quality metrics can alternatively be used to provide richer information.


Whilst in the above, the exemplary first gratings 4iC, 4iM (resp. second gratings 4iiC, 4iiM) match due to the fact that they are both formed of substantially straight grating lines, in general gratings which are considered to “substantially match” do not necessarily have to be formed of straight grating lines, nor do they have to be formed of identically shaped curved grating lines. In general, two gratings “substantially match” provided some parts of their respective structures are similar enough for it to be possible to create an observable fringe pattern that exhibits a discernible fringe spacing by overlaying those parts (even though other parts of their structure may be markedly different). Matching gratings may or may not have the same grating period.


Whilst in the above, the component gratings 4iC, 4iiC (and, correspondingly, the master gratings 4iM, 4iiM, which are in a substantially matching arrangement) are formed by modulations over substantially parallel surface portions, this does not have to be the case in general (for non-parallel gratings, the various angles shown e.g. in FIG. 4A can be equivalently defined by way of geometric projection onto a suitable plane e.g. whose normal is in the direction of the vector sum of the normals of the non-parallel gratings, which is the direction of the mean of those directions). Further, whilst in the above the surface modulations are over substantially flat surface portions, the disclosed techniques can also be applied to curved gratings e.g. formed by modulations on curved surface portions.


Further, in general the terminology “opposing gratings” (or similar) encompasses gratings which are not parallel. Two gratings are considered to be opposing when there exists a line of sight intersecting both gratings (e.g. in a direction that substantially matches the normals to those gratings), along which a resulting fringe pattern can be observed when those gratings are in near alignment. Whilst the above has been described with reference to opposing gratings, the techniques can be applied to non-opposing gratings, whereby the fringe pattern is formed for instance by a beam which has been guided onto both gratings by reflection.


The various gratings 4iC, 4iiC, 4iM, 4iiM can be binary (slanted/non-slanted), sinusoidal, trapezoidal (e.g. triangular) in shape (among others) and need not have the same shape, slant a, width w, depth h etc. as one another (though this is not excluded).


Whilst the above considers a substantially software-implemented controller 20, the functionality of the controller can be implemented using software, firmware, hardware (e.g., fixed logic circuitry), or a combination of these implementations. The terms “module,” “functionality,” “component” and “logic” as used herein generally represent, where applicable, software, firmware, hardware, or a combination thereof. In the case of a software implementation, the module, functionality, or logic represents program code that performs specified tasks when executed on a processor (e.g. CPU or CPUs). The program code can be stored in one or more computer readable memory devices. The features of the techniques described below are platform-independent, meaning that the techniques may be implemented on a variety of commercial computing platforms having a variety of processors.


For example, the apparatus may also include an entity (e.g. software) that causes hardware of a computer of the apparatus to perform operations, e.g., processors functional blocks, and so on. For example, the computer may include a computer-readable medium that may be configured to maintain instructions that cause the computer, and more particularly the operating system and associated hardware of the computer to perform operations. Thus, the instructions function to configure the operating system and associated hardware to perform the operations and in this way result in transformation of the operating system and associated hardware to perform functions. The instructions may be provided by the computer-readable medium to the computer through a variety of different configurations.


One such configuration of a computer-readable medium is signal bearing medium and thus is configured to transmit the instructions (e.g. as a carrier wave) to the computing device, such as via a network. The computer-readable medium may also be configured as a computer-readable storage medium and thus is not a signal bearing medium. Examples of a computer-readable storage medium include a random-access memory (RAM), read-only memory (ROM), an optical disc, flash memory, hard disk memory, and other memory devices that may us magnetic, optical, and other techniques to store instructions and other data.


In embodiments of the various aspect set out in the Summary section, the optical component and the master component may comprise alignment marks located so that, when the marks are aligned, the first fringe pattern is observable, wherein the sensor senses the marks, and wherein the controller is configured based on sensor data pertaining to the marks to reconfigure the support system from the current configuration to an intermediate configuration, in which the alignments marks are substantially aligned and from which the support system is then reconfigured to the new configuration.


The light sensor may comprise a camera which captures images of the first fringe pattern as the support system is reconfigured, and wherein the controller comprises an image recognition module which performs an automatic image recognition procedure to detect the first fringe pattern in the images, wherein the controller reconfigures the support system based on the results of the image recognition procedure.


The images may also be of the second fringe pattern, the automatic image recognition procedure detects the second fringe pattern, and the controller measures the fringe spacing of the second fringe pattern based on the results of the image recognition procedure.


The light sensor may comprise a sensor component which receives light of only a small portion of the first fringe pattern as the support system is reconfigured, and the controller may reconfigure the support system based on the rate at which the intensity of that light changes.


The light sensor may comprise another sensor component which receives light of only a small portion of the second fringe pattern, and the controller may measure the fringe spacing of the second fringe pattern based on the rate at which the intensity of that light changes.


The apparatus may comprise a laser which provides a beam and a beam expander which expands the beam to illuminate the gratings with an expanded beam that substantially encompasses the gratings so as to enhance the visibility of the fringe patterns.


The optical component and the master component may comprise alignment marks located so that, when the marks are aligned, the first fringe pattern is observable, and the process may comprise reconfiguring the support system from the current configuration to an intermediate configuration, in which the alignments marks are substantially aligned and from which the support system is then reconfigured to the new configuration.


The component gratings may be formed by surface modulations on the surface of the optical component. The surface modulations may be on substantially parallel portions of the surface of the optical component.


Both the component gratings may be formed by surface modulations on frontal portions of the surface of the optical component.


One of the component gratings may be formed by surface modulations on a frontal portion of the surface of the optical component and the other is formed by surface modulations on a rearward portion of the surface of the optical component.


The optical component may comprise polymer or may be a mould for moulding such optical components.


A microfabrication process may be performed on the master component to fabricate the master gratings prior to performing the steps of the second aspect.


The master component gratings may be tested to assess the quality of the master component prior to performing the steps of the second aspect.


The first component grating may have a period d1 and the second component grating may have a period d2, and the desired orientation angle of the master gratings may be substantially arccos(d1/(2d2)).


Although the subject matter has been described in language specific to structural features and/or methodological acts, it is to be understood that the subject matter defined in the appended claims is not necessarily limited to the specific features or acts described above. Rather, the specific features and acts described above are disclosed as example forms of implementing the claims.

Claims
  • 1. A quality assessment apparatus for assessing the quality of an optical component, the optical component comprising an arrangement of a first and a second component grating having a component relative orientation angle, wherein the quality is assessed in terms of a deviation of the component relative orientation angle from a desired relative orientation angle, the apparatus comprising: a configurable support system configured to support a master component comprising a substantially matching arrangement of a first and a second master grating having the desired relative orientation angle and to support the optical component with the first and second component gratings in the vicinity of the first and second master gratings, the apparatus further comprising:a light sensor configured to receive light which has interacted with both of the first gratings and light which has interacted with both of the second gratings, and to generate sensor data from the received light;a drive mechanism coupled to the support system; anda controller configured (i) to control the drive mechanism based on the sensor data to reconfigure the support system from a current configuration to a new configuration in which the fringe spacing of a first fringe pattern formed by the first gratings is substantially maximal and (ii) to measure from the sensor data the fringe spacing of a second fringe pattern formed by the second gratings in the new configuration, and to output a quality assessment based on the measured fringe spacing which is indicative of the deviation of the component relative orientation angle from the desired relative orientation angle.
  • 2. A quality assessment apparatus according to claim 1, wherein the optical component and the master component comprise alignment marks located so that, when the marks are aligned, the first fringe pattern is observable, wherein the sensor senses the marks, and wherein the controller is configured based on sensor data pertaining to the marks to reconfigure the support system from the current configuration to an intermediate configuration, in which the alignments marks are substantially aligned and from which the support system is then reconfigured to the new configuration.
  • 3. A quality assessment apparatus according to claim 1, wherein the light sensor comprises a camera which captures images of the first fringe pattern as the support system is reconfigured, and wherein the controller comprises an image recognition module which performs an automatic image recognition procedure to detect the first fringe pattern in the images, wherein the controller reconfigures the support system based on the results of the image recognition procedure.
  • 4. A quality assessment apparatus according to claim 3, wherein the images are also of the second fringe pattern, the automatic image recognition procedure detects the second fringe pattern, and the controller measures the fringe spacing of the second fringe pattern based on the results of the image recognition procedure.
  • 5. A quality assessment apparatus according to claim 1, wherein the light sensor comprises a sensor component which receives light of only a small portion of the first fringe pattern as the support system is reconfigured, and the controller reconfigures the support system based on the rate at which the intensity of that light changes.
  • 6. A quality assessment apparatus according to claim 5, wherein the light sensor comprises another sensor component which receives light of only a small portion of the second fringe pattern, and the controller measures the fringe spacing of the second fringe pattern based on the rate at which the intensity of that light changes.
  • 7. A quality assessment apparatus according to claim 1 comprising a laser which provides a beam and a beam expander which expands the beam to illuminate the gratings with an expanded beam that substantially encompasses the gratings so as to enhance the visibility of the fringe patterns.
  • 8. A quality assessment process for assessing the quality of an optical component, the optical component comprising an arrangement of a first and a second component grating having a component relative orientation angle, wherein the quality is assessed in terms of a deviation of the component relative orientation angle from a desired relative orientation angle, wherein the optical component and a master component comprising a substantially matching arrangement of a first and a second master grating having the desired relative orientation angle are supported by a configurable support system with the first and second component gratings in the vicinity of the first and second master gratings, the process comprising: receiving sensor data, the sensor data generated from light received which has interacted with both of the first gratings and light which has interacted with both of the second gratings;reconfiguring the support system based on the sensor data from a current configuration to a new configuration, in which the fringe spacing of a first fringe pattern formed by the first gratings is substantially maximal;measuring from the sensor data the fringe spacing of a second fringe pattern formed by the second gratings in the new configuration; andoutputting a quality assessment based on the measured fringe spacing which is indicative of the deviation of the component relative orientation angle from the desired relative orientation angle.
  • 9. A quality assessment process according to claim 8, wherein the optical component and the master component comprise alignment marks located so that, when the marks are aligned, the first fringe pattern is observable, and wherein the process comprises reconfiguring the support system from the current configuration to an intermediate configuration, in which the alignments marks are substantially aligned and from which the support system is then reconfigured to the new configuration.
  • 10. A quality assessment process according to claim 8, wherein the component gratings are formed by surface modulations on the surface of the optical component.
  • 11. A quality assessment process according to claim 8, wherein the surface modulations are on substantially parallel portions of the surface of the optical component.
  • 12. A quality assessment process according to claim 8, wherein both the component gratings are formed by surface modulations on frontal portions of the surface of the optical component.
  • 13. A quality assessment process according to claim 8 wherein one of the component gratings is formed by surface modulations on a frontal portion of the surface of the optical component and the other is formed by surface modulations on a rearward portion of the surface of the optical component.
  • 14. A quality assessment process according to claim 8, wherein the optical component comprises polymer or is a mould for moulding such optical components.
  • 15. A quality assessment process according to claim 8, comprising performing a microfabrication process on the master component to fabricate the master gratings prior to performing the steps of claim 8.
  • 16. A quality assessment process according to claim 8 comprising testing the master component gratings to assess the quality of the master component prior to performing the steps of claim 8.
  • 17. A quality assessment process according to claim 8, wherein the first component grating has a period d1 and the second component grating has a period d2, and the desired orientation angle of the master gratings is substantially arccos(d1/(2d2)).
  • 18. An apparatus comprising: one or more processors; anda computer-readable storage medium having stored thereon code for assessing the quality of an optical component, the optical component comprising an arrangement of a first and a second component grating having a component relative orientation angle, wherein the quality is assessed in terms of a deviation of the component relative orientation angle from a desired relative orientation angle, wherein the optical component and a master component comprising a substantially matching arrangement of a first and a second master grating having the desired relative orientation angle are supported by a configurable support system with the first and second component gratings in the vicinity of the first and second master gratings, the code configured when executed by the one or more processors to cause operations comprising:receiving sensor data, the sensor data generated from light which has interacted with both of the first gratings and light which has interacted with both of the second gratings;reconfiguring the support system based on the sensor data from a current configuration to a new configuration, in which the fringe spacing of a first fringe pattern formed by the first gratings is substantially maximal;measuring from the sensor data the fringe spacing of a second fringe pattern formed by the second gratings in the new configuration; andoutputting a quality assessment based on the measured fringe spacing which is indicative of the deviation of the component relative orientation angle from the desired relative orientation angle.
  • 19. An apparatus according to claim 18, wherein the optical component and the master component comprise alignment marks located so that, when the marks are aligned, the first fringe pattern is observable, wherein the sensor data includes sensor data pertaining to the marks, and wherein the operations comprise reconfiguring, based on the sensor data pertaining to the marks, the support system from the current configuration to an intermediate configuration, in which the alignments marks are substantially aligned and from which the support system is reconfigured to the new configuration.
  • 20. An apparatus according to claim 18 wherein the sensor data comprises images of the first fringe pattern and the operations comprise performing automatic image recognition on the images to detect the first fringe pattern, wherein a drive mechanism coupled to the support system is controlled based on the results of the image recognition procedure.
US Referenced Citations (524)
Number Name Date Kind
3227888 Turnbull et al. Jan 1966 A
3542453 Kantor Nov 1970 A
3836258 Courten et al. Sep 1974 A
3906528 Johnson Sep 1975 A
3971085 Mount Jul 1976 A
4200395 Stewart et al. Apr 1980 A
4294507 Johnson Oct 1981 A
4402610 Lacombat Sep 1983 A
4664524 Hattori May 1987 A
4711512 Upatnieks Dec 1987 A
4758087 Hicks, Jr. Jul 1988 A
4799752 Carome Jan 1989 A
4822145 Staelin Apr 1989 A
4860361 Sato et al. Aug 1989 A
4900129 Vanderwerf Feb 1990 A
4957351 Shioji Sep 1990 A
5004673 Vlannes Apr 1991 A
5019808 Prince et al. May 1991 A
5019898 Chao et al. May 1991 A
5106181 Rockwell, III Apr 1992 A
5114236 Matsugu May 1992 A
5146355 Prince et al. Sep 1992 A
5162656 Matsugu Nov 1992 A
5309169 Lippert May 1994 A
5313535 Williams May 1994 A
5359444 Piosenka et al. Oct 1994 A
5413884 Koch et al. May 1995 A
5453877 Gerbe et al. Sep 1995 A
5455458 Quon et al. Oct 1995 A
5459611 Bohn et al. Oct 1995 A
5483307 Anderson Jan 1996 A
5543588 Bisset et al. Aug 1996 A
5549212 Kanoh et al. Aug 1996 A
5574473 Sekiguchi Nov 1996 A
5579830 Giammaruti Dec 1996 A
5583609 Mizutani et al. Dec 1996 A
5606455 Eichenlaub Feb 1997 A
5614941 Hines Mar 1997 A
5630902 Galarneau et al. May 1997 A
5648643 Knowles et al. Jul 1997 A
5651414 Suzuki et al. Jul 1997 A
5673146 Kelly Sep 1997 A
5708449 Heacock et al. Jan 1998 A
5712995 Cohn Jan 1998 A
5714967 Okamura et al. Feb 1998 A
5737171 Buller et al. Apr 1998 A
5751476 Matsui et al. May 1998 A
5771042 Santos-Gomez Jun 1998 A
5771320 Stone Jun 1998 A
5772903 Hirsch Jun 1998 A
5856842 Tedesco Jan 1999 A
5861931 Gillian et al. Jan 1999 A
5880725 Southgate Mar 1999 A
5886822 Spitzer Mar 1999 A
5940149 Vanderwerf Aug 1999 A
5959664 Woodgate Sep 1999 A
5982553 Bloom et al. Nov 1999 A
5991087 Rallison Nov 1999 A
6101008 Popovich Aug 2000 A
6144439 Carollo Nov 2000 A
6160667 Smoot Dec 2000 A
6169829 Laming et al. Jan 2001 B1
6181852 Adams et al. Jan 2001 B1
6226178 Broder et al. May 2001 B1
6239502 Grewe et al. May 2001 B1
6271808 Corbin Aug 2001 B1
6307142 Allen et al. Oct 2001 B1
6323949 Lading et al. Nov 2001 B1
6323970 Popovich Nov 2001 B1
6377401 Bartlett Apr 2002 B1
6411512 Mankaruse et al. Jun 2002 B1
6417892 Sharp et al. Jul 2002 B1
6446442 Batchelor et al. Sep 2002 B1
6466198 Feinstein Oct 2002 B1
6470289 Peters et al. Oct 2002 B1
6481851 McNelley et al. Nov 2002 B1
6483580 Xu et al. Nov 2002 B1
6496218 Takigawa et al. Dec 2002 B2
6529331 Massof et al. Mar 2003 B2
6542307 Gleckman et al. Apr 2003 B2
6545650 Yamada et al. Apr 2003 B1
6553165 Temkin et al. Apr 2003 B1
6554428 Fergason et al. Apr 2003 B2
6577411 David Jun 2003 B1
6580529 Amitai et al. Jun 2003 B1
6606152 Littau Aug 2003 B2
6621702 Elias et al. Sep 2003 B2
6631755 Kung et al. Oct 2003 B1
6635999 Belliveau Oct 2003 B2
6639201 Almogy et al. Oct 2003 B2
6661436 Barksdale et al. Dec 2003 B2
6735499 Ohki et al. May 2004 B2
6753828 Tuceryan et al. Jun 2004 B2
6775460 Steiner et al. Aug 2004 B2
6792328 Laughery et al. Sep 2004 B2
6804115 Lai Oct 2004 B2
6809925 Belady et al. Oct 2004 B2
6819426 Sezginer Nov 2004 B2
6825987 Repetto et al. Nov 2004 B2
6829095 Amitai Dec 2004 B2
6867753 Chinthammit et al. Mar 2005 B2
6888613 Robins et al. May 2005 B2
6889755 Zuo et al. May 2005 B2
6906901 Liu Jun 2005 B1
6916584 Sreenivasan et al. Jul 2005 B2
6919867 Sauer Jul 2005 B2
6947020 Kiser et al. Sep 2005 B2
6964731 Krisko et al. Nov 2005 B1
6971443 Kung et al. Dec 2005 B2
6992738 Ishihara et al. Jan 2006 B2
6997241 Chou et al. Feb 2006 B2
7006215 Hoff et al. Feb 2006 B2
7015876 Miller Mar 2006 B1
7031894 Niu et al. Apr 2006 B2
7048385 Beeson et al. May 2006 B2
7061624 Ishizuka Jun 2006 B2
7069975 Haws et al. Jul 2006 B1
7099005 Fabrikant et al. Aug 2006 B1
7113605 Rui et al. Sep 2006 B2
7116555 Kamath et al. Oct 2006 B2
7151635 Bidnyk et al. Dec 2006 B2
7181699 Morrow et al. Feb 2007 B2
7184615 Levola Feb 2007 B2
7189362 Nordin et al. Mar 2007 B2
7191820 Chou et al. Mar 2007 B2
7193584 Lee Mar 2007 B2
7196758 Crawford et al. Mar 2007 B2
7212709 Hosoi May 2007 B2
7212723 McLeod et al. May 2007 B2
7250930 Hoffman et al. Jul 2007 B2
7261453 Morejon et al. Aug 2007 B2
7261827 Ootsu et al. Aug 2007 B2
7271795 Bradski Sep 2007 B2
7277282 Tate Oct 2007 B2
7301587 Uehara et al. Nov 2007 B2
7333690 Peale et al. Feb 2008 B1
7337018 Espinoza-Ibarra et al. Feb 2008 B2
7359420 Shchegrov et al. Apr 2008 B2
7365734 Fateh et al. Apr 2008 B2
7369101 Sauer et al. May 2008 B2
7372565 Holden et al. May 2008 B1
7376852 Edwards May 2008 B2
7396133 Burnett et al. Jul 2008 B2
7412306 Katoh et al. Aug 2008 B2
7416017 Haws et al. Aug 2008 B2
7417617 Eichenlaub Aug 2008 B2
7418170 Mukawa et al. Aug 2008 B2
7428001 Schowengerdt et al. Sep 2008 B2
7430349 Jones Sep 2008 B2
7430355 Heikenfeld et al. Sep 2008 B2
7437678 Awada et al. Oct 2008 B2
7455102 Cheng Nov 2008 B2
7505269 Cosley et al. Mar 2009 B1
7513627 Larson et al. Apr 2009 B2
7515143 Keam et al. Apr 2009 B2
7532227 Nakajima et al. May 2009 B2
7542665 Lei Jun 2009 B2
7551814 Smits Jun 2009 B1
7576916 Amitai Aug 2009 B2
7583327 Takatani Sep 2009 B2
7607111 Vaananen et al. Oct 2009 B2
7612882 Wu et al. Nov 2009 B2
7619895 Wertz et al. Nov 2009 B1
7631687 Yang Dec 2009 B2
7646606 Rytka et al. Jan 2010 B2
7649594 Kim et al. Jan 2010 B2
7656912 Brueck et al. Feb 2010 B2
7660500 Konttinen et al. Feb 2010 B2
7679641 Lipton et al. Mar 2010 B2
7693292 Gross et al. Apr 2010 B1
7701716 Blanco, Jr. et al. Apr 2010 B2
7706785 Lei et al. Apr 2010 B2
7716003 Wack et al. May 2010 B1
7719769 Sugihara et al. May 2010 B2
7728933 Kim et al. Jun 2010 B2
7768534 Pentenrieder et al. Aug 2010 B2
7777944 Ho et al. Aug 2010 B2
7788474 Switzer et al. Aug 2010 B2
7817104 Ryu et al. Oct 2010 B2
7826508 Reid et al. Nov 2010 B2
7832885 Hsiao et al. Nov 2010 B2
7843691 Reichert et al. Nov 2010 B2
7871811 Fang et al. Jan 2011 B2
7890882 Nelson Feb 2011 B1
7894613 Ong et al. Feb 2011 B1
7903409 Patel et al. Mar 2011 B2
7904832 Ubillos Mar 2011 B2
7909958 Washburn et al. Mar 2011 B2
7941231 Dunn May 2011 B1
7986462 Kobayashi et al. Jul 2011 B2
8004621 Woodgate et al. Aug 2011 B2
8014644 Morimoto et al. Sep 2011 B2
8033709 Kao et al. Oct 2011 B2
8046616 Edwards Oct 2011 B2
8061411 Xu et al. Nov 2011 B2
8085948 Thomas et al. Dec 2011 B2
8092064 Erchak et al. Jan 2012 B2
8125579 Khan et al. Feb 2012 B2
8128800 Seo et al. Mar 2012 B2
8139504 Mankins et al. Mar 2012 B2
8150893 Bohannon et al. Apr 2012 B2
8160411 Levola et al. Apr 2012 B2
8162524 Van Ostrand et al. Apr 2012 B2
8165988 Shau et al. Apr 2012 B2
8176436 Arend et al. May 2012 B2
8195220 Kim et al. Jun 2012 B2
8233204 Robbins et al. Jul 2012 B1
8233273 Chen et al. Jul 2012 B2
8244667 Weinberger et al. Aug 2012 B1
8246170 Yamamoto et al. Aug 2012 B2
8274614 Yokote et al. Sep 2012 B2
8300614 Ankaiah et al. Oct 2012 B2
8332402 Forstall et al. Dec 2012 B2
8358400 Escuti Jan 2013 B2
8384999 Crosby et al. Feb 2013 B1
8392035 Patel et al. Mar 2013 B2
8395898 Chamseddine et al. Mar 2013 B1
8418083 Lundy et al. Apr 2013 B1
8434019 Nelson Apr 2013 B2
8446340 Aharoni May 2013 B2
8472119 Kelly Jun 2013 B1
8482920 Tissot et al. Jul 2013 B2
8571539 Ranganathan et al. Oct 2013 B1
8576143 Kelly Nov 2013 B1
8589341 Golde et al. Nov 2013 B2
8594702 Naaman et al. Nov 2013 B2
8605700 Gurin Dec 2013 B2
8611014 Valera et al. Dec 2013 B2
8627228 Yosef et al. Jan 2014 B2
8629815 Brin et al. Jan 2014 B2
8638498 Bohn et al. Jan 2014 B2
8645871 Fong et al. Feb 2014 B2
8666212 Amirparviz Mar 2014 B1
8693500 Ludwig et al. Apr 2014 B2
8698845 Lemay Apr 2014 B2
8700931 Gudlavenkatasiva et al. Apr 2014 B2
8712598 Dighde et al. Apr 2014 B2
8754831 Kollin et al. Jun 2014 B2
8810600 Bohn et al. Aug 2014 B2
8817350 Robbins et al. Aug 2014 B1
8823531 McCleary et al. Sep 2014 B1
8909384 Beitelmal et al. Dec 2014 B1
8917453 Bohn Dec 2014 B2
8934235 Rubenstein et al. Jan 2015 B2
8941683 Son et al. Jan 2015 B2
8989535 Robbins Mar 2015 B2
9304235 Sainiema et al. Apr 2016 B2
9372347 Levola et al. Jun 2016 B1
20010043208 Furness, III et al. Nov 2001 A1
20020035455 Niu et al. Mar 2002 A1
20020038196 Johnson et al. Mar 2002 A1
20020041735 Cai et al. Apr 2002 A1
20020044152 Abbott et al. Apr 2002 A1
20020044162 Sawatari Apr 2002 A1
20020063820 Broer et al. May 2002 A1
20020097558 Stone et al. Jul 2002 A1
20020138772 Crawford et al. Sep 2002 A1
20020171939 Song Nov 2002 A1
20020180659 Takahashi Dec 2002 A1
20030006364 Katzir et al. Jan 2003 A1
20030023889 Hofstee et al. Jan 2003 A1
20030137706 Rmanujam et al. Jul 2003 A1
20030179453 Mori et al. Sep 2003 A1
20030214728 Olczak Nov 2003 A1
20040011503 Kung et al. Jan 2004 A1
20040042724 Gombert et al. Mar 2004 A1
20040085649 Repetto et al. May 2004 A1
20040108971 Waldern et al. Jun 2004 A1
20040109234 Levola Jun 2004 A1
20040135209 Hsieh et al. Jul 2004 A1
20040151466 Crossman-Bosworth et al. Aug 2004 A1
20040176928 Johnson Sep 2004 A1
20040267990 Lin Dec 2004 A1
20050100272 Gilman May 2005 A1
20050174737 Meir Aug 2005 A1
20050207120 Tseng et al. Sep 2005 A1
20050243107 Haim et al. Nov 2005 A1
20050248705 Smith et al. Nov 2005 A1
20050285878 Singh et al. Dec 2005 A1
20060018025 Sharon et al. Jan 2006 A1
20060032616 Yang Feb 2006 A1
20060038881 Starkweather et al. Feb 2006 A1
20060054787 Olsen et al. Mar 2006 A1
20060072206 Tsuyuki et al. Apr 2006 A1
20060118280 Liu Jun 2006 A1
20060129951 Vaananen et al. Jun 2006 A1
20060132806 Shchegrov et al. Jun 2006 A1
20060132914 Weiss et al. Jun 2006 A1
20060139447 Unkrich Jun 2006 A1
20060152646 Schrader Jul 2006 A1
20060164382 Kulas et al. Jul 2006 A1
20060183331 Hofmann Aug 2006 A1
20060196643 Hata et al. Sep 2006 A1
20060221448 Nivon et al. Oct 2006 A1
20060228073 Mukawa et al. Oct 2006 A1
20060249765 Hsieh Nov 2006 A1
20070002412 Aihara Jan 2007 A1
20070008456 Lesage et al. Jan 2007 A1
20070023703 Sunaoshi et al. Feb 2007 A1
20070027591 Goldenberg et al. Feb 2007 A1
20070041684 Popovich et al. Feb 2007 A1
20070097019 Wynne-Powell et al. May 2007 A1
20070147673 Crandall Jun 2007 A1
20070153395 Repetto et al. Jul 2007 A1
20070177260 Kuppenheimer et al. Aug 2007 A1
20070236959 Tolbert Oct 2007 A1
20070284093 Bhatti et al. Dec 2007 A1
20080008076 Raguin Jan 2008 A1
20080014534 Barwicz et al. Jan 2008 A1
20080025350 Arbore et al. Jan 2008 A1
20080043100 Sobel et al. Feb 2008 A1
20080043425 Hebert et al. Feb 2008 A1
20080088603 Eliasson et al. Apr 2008 A1
20080088624 Long et al. Apr 2008 A1
20080106677 Kuan et al. May 2008 A1
20080117341 McGrew May 2008 A1
20080141681 Arnold Jun 2008 A1
20080150913 Bell et al. Jun 2008 A1
20080174735 Quach et al. Jul 2008 A1
20080232680 Berestov et al. Sep 2008 A1
20080248852 Rasmussen Oct 2008 A1
20080285140 Amitai Nov 2008 A1
20080297535 Reinig Dec 2008 A1
20080303918 Keithley Dec 2008 A1
20080311386 Wendt Dec 2008 A1
20090002939 Baugh et al. Jan 2009 A1
20090015742 Liao et al. Jan 2009 A1
20090021908 Patel et al. Jan 2009 A1
20090051283 Cok et al. Feb 2009 A1
20090059376 Hayakawa Mar 2009 A1
20090084525 Satou et al. Apr 2009 A1
20090092261 Bard Apr 2009 A1
20090097127 Amitai Apr 2009 A1
20090128449 Brown et al. May 2009 A1
20090128901 Tilleman et al. May 2009 A1
20090180250 Holling et al. Jul 2009 A1
20090189974 Deering Jul 2009 A1
20090190003 Park et al. Jul 2009 A1
20090195756 Li et al. Aug 2009 A1
20090222147 Nakashima et al. Sep 2009 A1
20090224416 Laakkonen et al. Sep 2009 A1
20090244413 Ishikawa et al. Oct 2009 A1
20090246707 Li et al. Oct 2009 A1
20090256837 Deb et al. Oct 2009 A1
20090262419 Robinson et al. Oct 2009 A1
20100002989 Tokushima Jan 2010 A1
20100021108 Kang et al. Jan 2010 A1
20100053151 Marti et al. Mar 2010 A1
20100060551 Sugiyama et al. Mar 2010 A1
20100061078 Kim Mar 2010 A1
20100074291 Nakamura Mar 2010 A1
20100084674 Paetzold et al. Apr 2010 A1
20100096617 Shanks Apr 2010 A1
20100103078 Mukawa et al. Apr 2010 A1
20100134534 Sesselberg et al. Jun 2010 A1
20100141905 Burke Jun 2010 A1
20100149073 Chaum et al. Jun 2010 A1
20100188353 Yoon et al. Jul 2010 A1
20100200736 Laycock et al. Aug 2010 A1
20100201953 Freeman et al. Aug 2010 A1
20100213467 Lee et al. Aug 2010 A1
20100220439 Qin Sep 2010 A1
20100229853 Vandal et al. Sep 2010 A1
20100238270 Bjelkhagen et al. Sep 2010 A1
20100245387 Bachelder et al. Sep 2010 A1
20100259889 Chen et al. Oct 2010 A1
20100271467 Akeley Oct 2010 A1
20100277421 Charlier et al. Nov 2010 A1
20100277439 Charlier et al. Nov 2010 A1
20100277779 Futterer et al. Nov 2010 A1
20100284085 Laakkonen Nov 2010 A1
20100300654 Edwards Dec 2010 A1
20100309687 Sampsell et al. Dec 2010 A1
20100315781 Agostini Dec 2010 A1
20100317132 Rogers et al. Dec 2010 A1
20100321609 Qi et al. Dec 2010 A1
20100328351 Tan Dec 2010 A1
20110012814 Tanaka Jan 2011 A1
20110021251 Lindén Jan 2011 A1
20110025605 Kwitek Feb 2011 A1
20110026128 Baker et al. Feb 2011 A1
20110032482 Agurok Feb 2011 A1
20110050547 Mukawa Mar 2011 A1
20110050655 Mukawa Mar 2011 A1
20110063795 Yeh et al. Mar 2011 A1
20110075442 Chiang Mar 2011 A1
20110084893 Lee et al. Apr 2011 A1
20110090343 Alt et al. Apr 2011 A1
20110091156 Laughlin Apr 2011 A1
20110114823 Katzir et al. May 2011 A1
20110127024 Patel et al. Jun 2011 A1
20110134017 Burke Jun 2011 A1
20110134645 Hitchcock et al. Jun 2011 A1
20110141388 Park et al. Jun 2011 A1
20110148931 Kim Jun 2011 A1
20110163986 Lee et al. Jul 2011 A1
20110194029 Herrmann et al. Aug 2011 A1
20110205251 Auld Aug 2011 A1
20110210946 Goertz et al. Sep 2011 A1
20110214082 Osterhout et al. Sep 2011 A1
20110215349 An et al. Sep 2011 A1
20110221658 Haddick et al. Sep 2011 A1
20110221659 King et al. Sep 2011 A1
20110222236 Luo et al. Sep 2011 A1
20110227820 Haddick et al. Sep 2011 A1
20110227913 Hyndman Sep 2011 A1
20110235179 Simmonds Sep 2011 A1
20110242145 Nishimura et al. Oct 2011 A1
20110242392 Chiang Oct 2011 A1
20110242757 Tracy et al. Oct 2011 A1
20110248904 Miyawaki et al. Oct 2011 A1
20110248958 Gruhlke et al. Oct 2011 A1
20110267799 Epstein et al. Nov 2011 A1
20110283223 Vaittinen et al. Nov 2011 A1
20110295913 Enbutsu Dec 2011 A1
20110299044 Yeh et al. Dec 2011 A1
20110304640 Noge Dec 2011 A1
20110309378 Lau et al. Dec 2011 A1
20110310232 Wilson et al. Dec 2011 A1
20110310312 Yokote et al. Dec 2011 A1
20120013651 Trayner et al. Jan 2012 A1
20120019434 Kuhlman et al. Jan 2012 A1
20120026161 Chen et al. Feb 2012 A1
20120030616 Howes et al. Feb 2012 A1
20120033306 Valera et al. Feb 2012 A1
20120038629 Brown et al. Feb 2012 A1
20120041721 Chen Feb 2012 A1
20120050144 Morlock Mar 2012 A1
20120052934 Maharbiz et al. Mar 2012 A1
20120062998 Schultz et al. Mar 2012 A1
20120069413 Schultz Mar 2012 A1
20120084710 Sirpal et al. Apr 2012 A1
20120106170 Matthews et al. May 2012 A1
20120111544 Senatori May 2012 A1
20120113092 Bar-Zeev et al. May 2012 A1
20120120493 Simmonds et al. May 2012 A1
20120134623 Boudreau et al. May 2012 A1
20120157114 Alameh et al. Jun 2012 A1
20120162764 Shimizu Jun 2012 A1
20120176322 Karmi et al. Jul 2012 A1
20120176474 Border Jul 2012 A1
20120182687 Dighde et al. Jul 2012 A1
20120188205 Jansson et al. Jul 2012 A1
20120195553 Hasegawa et al. Aug 2012 A1
20120200495 Johansson Aug 2012 A1
20120206589 Crandall Aug 2012 A1
20120206880 Andres et al. Aug 2012 A1
20120218301 Miller Aug 2012 A1
20120227006 Amm Sep 2012 A1
20120235885 Miller et al. Sep 2012 A1
20120242561 Sugihara Sep 2012 A1
20120256856 Suzuki et al. Oct 2012 A1
20120256963 Suzuki et al. Oct 2012 A1
20120262657 Nakanishi et al. Oct 2012 A1
20120287381 Li et al. Nov 2012 A1
20120292535 Choi et al. Nov 2012 A1
20120304092 Jarrett et al. Nov 2012 A1
20130000871 Olson et al. Jan 2013 A1
20130033485 Kollin et al. Feb 2013 A1
20130081779 Liao et al. Apr 2013 A1
20130093741 Akimoto et al. Apr 2013 A1
20130106592 Morgan et al. May 2013 A1
20130106674 Wheeler et al. May 2013 A1
20130148864 Dolson et al. Jun 2013 A1
20130162673 Bohn Jun 2013 A1
20130163089 Bohn Jun 2013 A1
20130170031 Bohn Jul 2013 A1
20130170802 Pitwon Jul 2013 A1
20130186596 Rubenstein Jul 2013 A1
20130186598 Rubenstein Jul 2013 A1
20130187943 Bohn et al. Jul 2013 A1
20130207964 Fleck Aug 2013 A1
20130208003 Bohn Aug 2013 A1
20130208362 Bohn Aug 2013 A1
20130208482 Fleck et al. Aug 2013 A1
20130215081 Levin et al. Aug 2013 A1
20130226931 Hazel et al. Aug 2013 A1
20130242056 Fleck Sep 2013 A1
20130242555 Mukawa Sep 2013 A1
20130250431 Robbins et al. Sep 2013 A1
20130252628 Kuehnel Sep 2013 A1
20130254412 Menezes et al. Sep 2013 A1
20130257848 Westerinen et al. Oct 2013 A1
20130258701 Westerinen et al. Oct 2013 A1
20130267309 Robbins Oct 2013 A1
20130294030 Wang et al. Nov 2013 A1
20130305184 Kim et al. Nov 2013 A1
20130307875 Anderson Nov 2013 A1
20130314789 Saarikko et al. Nov 2013 A1
20130314793 Robbins Nov 2013 A1
20130322810 Robbins Dec 2013 A1
20130332159 Federighi et al. Dec 2013 A1
20130335671 Fleck Dec 2013 A1
20130339446 Balassanian et al. Dec 2013 A1
20130342674 Dixon Dec 2013 A1
20130346725 Lomet et al. Dec 2013 A1
20140010265 Peng Jan 2014 A1
20140022265 Canan et al. Jan 2014 A1
20140041827 Giaimo Feb 2014 A1
20140059139 Filev et al. Feb 2014 A1
20140063367 Yang et al. Mar 2014 A1
20140078130 Uchino et al. Mar 2014 A1
20140089833 Hwang et al. Mar 2014 A1
20140094973 Giaimo et al. Apr 2014 A1
20140098671 Raleigh et al. Apr 2014 A1
20140104665 Popovich et al. Apr 2014 A1
20140104685 Bohn Apr 2014 A1
20140111865 Kobayashi Apr 2014 A1
20140116982 Schellenberg et al. May 2014 A1
20140140653 Brown et al. May 2014 A1
20140140654 Brown et al. May 2014 A1
20140143247 Rathnavelu et al. May 2014 A1
20140143351 Deng May 2014 A1
20140176528 Robbins Jun 2014 A1
20140184699 Ito et al. Jul 2014 A1
20140204455 Popovich Jul 2014 A1
20140240842 Nguyen et al. Aug 2014 A1
20140300966 Travers et al. Oct 2014 A1
20140314374 Fattal et al. Oct 2014 A1
20150086163 Valera et al. Mar 2015 A1
20150168731 Robbins Jun 2015 A1
20160033697 Sainiemi et al. Feb 2016 A1
20160033784 Levola et al. Feb 2016 A1
20160035539 Sainiemi et al. Feb 2016 A1
Foreign Referenced Citations (62)
Number Date Country
1440513 Sep 2003 CN
101029968 Sep 2007 CN
101105512 Jan 2008 CN
102004315 Apr 2011 CN
0977022 Feb 2000 EP
1494109 Jan 2005 EP
1847924 Oct 2007 EP
2065750 Jun 2009 EP
2083310 Jul 2009 EP
2112547 Oct 2009 EP
2144177 Jan 2010 EP
2216678 Jan 2010 EP
2241926 Oct 2010 EP
2662761 Nov 2013 EP
2752691 Jul 2014 EP
2887121 Jun 2015 EP
2942811 Sep 2010 FR
2500631 Oct 2013 GB
557109618 Jul 1982 JP
H0422358 Jan 1992 JP
7311303 Nov 1995 JP
2000347037 Dec 2000 JP
2001078234 Mar 2001 JP
2008017135 Jan 2008 JP
20070001771 Jan 2007 KR
20090076539 Jul 2009 KR
20090084316 Aug 2009 KR
20110070087 Jun 2011 KR
20120023458 Mar 2012 KR
201407202 Feb 2014 TW
WO-9418595 Aug 1994 WO
WO 9952002 Oct 1999 WO
WO-0133282 May 2001 WO
WO-0195027 Dec 2001 WO
WO-03090611 Nov 2003 WO
WO-2006054056 May 2006 WO
WO 2006064334 Jun 2006 WO
WO 2007052265 May 2007 WO
WO-2007057500 May 2007 WO
WO-2008021504 Feb 2008 WO
WO 2008081070 Jul 2008 WO
WO 2009029826 Mar 2009 WO
WO-2009077601 Jun 2009 WO
WO 2009127849 Oct 2009 WO
WO 2010092409 Aug 2010 WO
WO-2010125337 Nov 2010 WO
WO-2011003381 Jan 2011 WO
WO 2011051660 May 2011 WO
WO-2011051660 May 2011 WO
WO-2011090455 Jul 2011 WO
WO-2011110728 Sep 2011 WO
WO-2011131978 Oct 2011 WO
WO-2012172295 Dec 2012 WO
WO-2012177811 Dec 2012 WO
WO 2013033274 Mar 2013 WO
WO-2013058769 Apr 2013 WO
WO 2013164665 Nov 2013 WO
WO-2014051920 Apr 2014 WO
WO-2014085502 Jun 2014 WO
WO-2014088343 Jun 2014 WO
WO 2014111163 Jul 2014 WO
WO-2014130383 Aug 2014 WO
Non-Patent Literature Citations (243)
Entry
“Advisory Action”, U.S. Appl. No. 13/428,879, Sep. 19, 2014, 3 pages.
“Augmented Reality and Physical Games”, U.S. Appl. No. 13/440,165, filed Apr. 5, 2012, 49 pages.
“BragGrate Mirror”, Retrieved from <http://web.archive.org/web/20090814104232/http://www.optigrate.com/BragGrate—Mirror.html> on Jul. 8, 2014, Aug. 14, 2009, 2 pages.
“Corrected Final Office Action”, U.S. Appl. No. 13/432,311, Dec. 24, 2014, 25 pages.
“Corrected Notice of Allowance”, U.S. Appl. No. 13/355,836, Sep. 11, 2014, 2 pages.
“Corrected Notice of Allowance”, U.S. Appl. No. 13/355,836, Dec. 15, 2014, 2 pages.
“DigiLens”, SBG Labs—retrieved from <http://www.digilens.com/products.html> on Jun. 19, 2012, 1 page.
“Final Office Action”, U.S. Appl. No. 13/336,873, Jan. 5, 2015, 21 pages.
“Final Office Action”, U.S. Appl. No. 13/336,895, May 27, 2014, 11 pages.
“Final Office Action”, U.S. Appl. No. 13/355,836, Mar. 10, 2014, 18 pages.
“Final Office Action”, U.S. Appl. No. 13/355,914, Feb. 23, 2015, 21 pages.
“Final Office Action”, U.S. Appl. No. 13/355,914, Jun. 19, 2014, 11 pages.
“Final Office Action”, U.S. Appl. No. 13/397,495, May 29, 2014, 10 pages.
“Final Office Action”, U.S. Appl. No. 13/397,516, Jan. 29, 2015, 13 pages.
“Final Office Action”, U.S. Appl. No. 13/397,539, Jun. 29, 2015, 11 pages.
“Final Office Action”, U.S. Appl. No. 13/428,879, Jul. 14, 2014, 12 pages.
“Final Office Action”, U.S. Appl. No. 13/432,311, Dec. 15, 2014, 24 pages.
“Final Office Action”, U.S. Appl. No. 13/432,372, Jan. 29, 2015, 33 pages.
“Final Office Action”, U.S. Appl. No. 13/440,165, Jun. 6, 2014, 12 pages.
“Final Office Action”, U.S. Appl. No. 13/440,165, Jul. 21, 2015, 11 pages.
“Final Office Action”, U.S. Appl. No. 13/477,646, Feb. 23, 2015, 36 pages.
“Final Office Action”, U.S. Appl. No. 13/477,646, May 5, 2014, 26 pages.
“Final Office Action”, U.S. Appl. No. 13/525,649, Oct. 9, 2014, 8 pages.
“Final Office Action”, U.S. Appl. No. 13/774,875, Jun. 4, 2015, 10 pages.
“Final Office Action”, U.S. Appl. No. 14/134,993, Jul. 16, 2015, 19 pages.
“Final Office Action ”, U.S. Appl. No. 14/134,993, Aug. 20, 2014, 15 pages.
“Foreign Notice of Allowance”, CN Application No. 201320034345.X, Aug. 14, 2013, 2 Pages.
“Foreign Office Action”, CN Application No. 201210563730.3, Jan. 7, 2015, 16 pages.
“Foreign Office Action”, CN Application No. 201210567932.5, Aug. 14, 2014, 12 pages.
“Foreign Office Action”, EP Application No. 13769961.7, Mar. 11, 2015, 8 pages.
“Foreign Office Action”, EP Application No. 13769961.7, Jun. 30, 2015, 6 pages.
“HDTV Helmet Mounted Display”, Available at <http://defense-update.com/products/h/HDTV-HMD.htm>, Jan. 26, 2005, 1 page.
“International Search Report and Written Opinion”, Application No. PCT/US2012/069331, Mar. 29, 2013, 10 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2014/016658, Apr. 23, 2014, 10 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2013/053676, Oct. 16, 2013, 10 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2013/030632, Jun. 26, 2013, 10 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2013/028477, Jun. 21, 2013, 11 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2013/031111, Jun. 26, 2013, 11 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2013/076832, Mar. 17, 2014, 12 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2013/061225, Jun. 4, 2014, 12 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2012/071563, Apr. 25, 2013, 13 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2013/021784, Apr. 30, 2013, 9 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2012/069330, Mar. 28, 2013, 9 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2013/021783, May 15, 2013, 9 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2013/026200, Jun. 3, 2013, 9 pages.
“Light Guide Techniques using LED Lamps”, Application Brief I-003, retrieved from <http://www.ciri.org.nz/downloads/Lightpipe%20design.pdf> on Jan. 12, 2012, Oct. 14, 2008, 22 pages.
“New Technology from MIT may Enable Cheap, Color, Holographic Video Displays”, Retrieved from <http://www.gizmag.com/holograph-3d-color-video-display-inexpensive-mit/28029/> on Feb. 25, 2015, Jun. 24, 2013, 8 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/397,495, Nov. 13, 2013, 8 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/440,165, Feb. 6, 2014, 12 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/336,873, Apr. 9, 2015, 18 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/336,873, Jul. 25, 2014, 16 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/336,895, Oct. 24, 2013, 9 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/343,675, Jul. 16, 2013, 9 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/355,836, Nov. 4, 2013, 15 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/355,914, Feb. 14, 2014, 10 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/355,914, Oct. 28, 2014, 18 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/397,495, Apr. 3, 2015, 11 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/397,516, Jun. 12, 2014, 11 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/397,516, Nov. 25, 2013, 10 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/397,539, Mar. 16, 2015, 9 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/397,617, May 5, 2015, 6 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/397,617, Oct. 9, 2014, 6 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/428,879, Feb. 24, 2015, 10 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/428,879, Mar. 17, 2014, 10 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/428,879, Jun. 26, 2015, 13 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/432,311, Jun. 2, 2015, 25 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/432,311, Jul. 8, 2014, 33 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/432,372, May 9, 2014, 26 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/432,372, Oct. 24, 2014, 27 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/440,165, Feb. 13, 2015, 10 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/440,165, Oct. 16, 2014, 11 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/477,646, Jun. 18, 2015, 43 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/477,646, Oct. 6, 2014, 34 pages.
“Non Final Office Action”, U.S. Appl. No. 13/477,646, Nov. 22, 2013, 20 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/525,649, Jan. 29, 2014, 7 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/525,649, Feb. 5, 2015, 7 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/525,649, Jun. 5, 2014, 7 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/570,073, Jan. 23, 2015, 7 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/631,308, Feb. 23, 2015, 9 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/722,917, May 21, 2015, 12 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/774,875, Nov. 24, 2014, 8 pages.
“Non-Final Office Action”, U.S. Appl. No. 14/134,993, Jan. 22, 2015, 17 pages.
“Non-Final Office Action”, U.S. Appl. No. 14/134,993, Apr. 17, 2014, 34 pages.
“Notice of Allowance”, U.S. Appl. No. 13/336,895, Aug. 11, 2014, 6 pages.
“Notice of Allowance”, U.S. Appl. No. 13/343,675, Sep. 16, 2013, 8 pages.
“Notice of Allowance”, U.S. Appl. No. 13/355,836, Jun. 13, 2014, 11 pages.
“Notice of Allowance”, U.S. Appl. No. 13/355,836, Oct. 8, 2014, 11 pages.
“Notice of Allowance”, U.S. Appl. No. 13/356,545, Mar. 28, 2014, 6 pages.
“Notice of Allowance”, U.S. Appl. No. 13/488,145, Nov. 19, 2014, 8 pages.
“Restriction Requirement”, U.S. Appl. No. 13/355,836, Sep. 27, 2013, 6 pages.
“Restriction Requirement”, U.S. Appl. No. 13/397,539, Dec. 1, 2014, 6 pages.
“Restriction Requirement”, U.S. Appl. No. 13/488,145, Sep. 8, 2014, 14 pages.
“Restriction Requirement”, U.S. Appl. No. 13/570,073, Nov. 18, 2014, 7 pages.
“Supplemental Notice of Allowance”, U.S. Appl. No. 13/356,545, Jul. 22, 2014, 2 pages.
“Supplementary European Search Report”, EP Application No. 13769961.7, Mar. 3, 2015, 3 pages.
“Two-Faced: Transparent Phone with Dual Touch Screens”, Retrieved from <http://gajitz.com/two-faced-transparent-phone-with-dual-touch-screens/>, Jun. 7, 2012, 3 pages.
“Variable Groove Depth (VGD) Master Gratings”, Retrieved From: <http://www.horiba.com/scientific/products/diffraction-gratings/catalog/variable-groove-depth-vgd/> May 28, 2014, 2 pages.
“Written Opinion”, Application No. PCT/US2013/061225, Oct. 10, 2014, 6 Pages.
Allen,“ELIXIR—Solid-State Luminaire with Enhanced Light Extraction by Internal Reflection”, Journal of Display Technology, vol. 3, No. 2, Available at <http://www.nanolab.uc.edu/Publications/PDFfiles/355.pdf>, Jun. 2007, pp. 155-159.
Aron,“‘Sprinting’ chips could push phones to the speed limit”, New Scientist, Feb. 20, 2012, Issue #2852, Feb. 20, 2012, 2 pages.
Baluja, “Non-Intrusive Gaze Tracking Using Artificial Neural Networks”, Technical Report CMU-CS-94-102, Available at <http://citeseerx.ist.psu.edu/viewdoc/download?doi=10.1.1.33.4027&rep=rep1&type=pdf>, Jan. 5, 1994, 14 pages.
Barger,“COTS Cooling”, Publication of the National Electronics Manufacturing Center of Excellence, Retrieved from: <http://www.empf.org/empfasis/2009/Oct09/cots.html > on Jul. 9, 2012, Oct. 2009, 4 pages.
Baudisch,“Back-of-Device Interaction Allows Creating Very Small Touch Devices”, In Proceedings of the 27th International Conference on Human Factors in Computing Systems, Retrieved from <http://citeseerx.ist.psu.edu/viewdoc/download?doi=10.1.1.160.3337&rep=rep1&type=pdf>, Apr. 2005, 10 pages.
Baxtor,“TwinTech GeForce GTS 250 XT OC 1GB Graphics Card”, retrieved from <http://www.tweaktown.com/reviews/2733/twintech—geforce—gts—250—xt—oc—1gb—graphics—card/index3.html> on Dec. 30, 2011, Apr. 24, 2009, 4 pages.
Chang-Yen,“A Monolithic PDMS Waveguide System Fabricated Using Soft-Lithography Techniques”, In Journal of Lightwave Technology, vol. 23, No. 6, Jun. 2005, 6 pages.
Charles,“Design of Optically Path Length Matched, Three-Dimensional Photonic Circuits Comprising Uniquely Routed Waveguides”, In Proceedings of Applied Optics, vol. 51, Issue 27, Sep. 20, 2012, 11 pages.
Chen,“A Study of Fiber-to-Fiber Losses in Waveguid Grating Routers”, In Journal of Lightwave Technology, vol. 15, No. 10, Oct. 1997, 5 pages.
Chen,“Strategies for 3D Video with Wide Fields-of-View”, IEEE Proceeding Optoelectronics, vol. 148, Issue 2, Available at <http://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=926823>, Apr. 2001, pp. 85-90.
Cheng,“Waveguide Displays Based on Polymer-dispersed Liquid Crystals”, SPIE Newsroom, Available at <http://spie.org/documents/Newsroom/Imported/003805/003805—10.pdf>, Aug. 12, 2011, 2 pages.
Chirgwin,“Researches propose to ‘overclock’ scheme for mobiles—Processing at a sprint to overcome tech limitations”, The Register, Feb. 21, 2012, 2 pages.
Coldeway,“Researches Propose “Computational Sprinting” to Speed Up Chips by 1000%—But Only for a Second”, TechCrunch, Feb. 28, 2012, Feb. 29, 2012, 2 pages.
Cottier,“Label-free Highly Sensitive Detection of (small) Molecules by Wavelength Interrogation of Integrated Optical Chips”, n Proceedings of Sensors and Actuators B: Chemical, vol. 91, Issue 1-3, Jun. 1, 2003, pp. 241-251.
DeAgazio:“Selecting Display Backlighting for Portable, Handheld Devices”, Hearst Electronics Products, retrieved from <http://www2.electronicproducts.com/Selecting—display—backlighting—for—portable—handheld—devices-article-farcglobal-feb2008-html.aspx> on Jan. 12, 2012, Jan. 2, 2008, 4 pages.
Dumon,“Compact Arrayed Waveguide Grating Devices in Silicon-on-Insulator”, In Proceedings of the IEEE/LEOS Symposium Benelux Chapter, May 27, 2014, 4 pages.
Eadicicco,“First Transparent Tablet Lets You Touch From Both Sides”, Retrieved from <http://blog.laptopmag.com/first-transparent-tablet>, Dec. 26, 2013, 4 pages.
Glendenning,“Polymer Micro-Optics via Micro Injection Moulding”, Available at: https://web.archive.org/web/20120310003606/http://www.microsystems.uk.com/english/polymer—optics—injection—moulding.html, Jan. 10, 2011, 6 pages.
Grabarnik,“Concave Diffraction Gratings Fabricated With Planar Lithography,” In Proceedings of SPIE, vol. 6992, May 3, 2008, 8 pages.
Greenemeier,“Could “Computational Sprinting” Speed Up Smart Phones without Burning Them Out?”, Scientific American, Feb. 29, 2012, 2 pages.
Greiner,“Bandpass engineering of lithographically scribed channel-waveguide Bragg gratings”, In Proceedings of Optics Letters, vol. 29, No. 8, Apr. 15, 2004, pp. 806-808.
Han,“Accurate diffraction efficiency control for multiplexed volume holographic gratings”, Retrieved at: opticalengineering.spiedigitallibrary.org/data/Journals/.../2799—1, 2002, 4 pages.
Hua,“Engineering of Head-mounted Projective Displays”, In Proceedings of Applied Optics, vol. 39, No. 22, Aug. 1, 2000, 11 pages.
Ismail,“Improved Arrayed-Waveguide-Grating Layout Avoiding Systematic Phase Errors”, In Proceedings of Optics Express, vol. 19, No. 9, Apr. 25, 2011, pp. 8781-8794.
Jacques,“Polarized Light Imaging of Tissue”, Available at <http://www.lumamed.com/documents/5—polarized%20light%20imaging.pdf>, 2004, 17 pages.
Jarvenpaa,“Compact near-to-eye display with integrated gaze tracker”, Second International Conference on Computer Engineering and Applications, Mar. 19, 2010, 9 pages.
Jaworski,“A Novel Design of Heat Sink with PCM for Electronics Cooling”, 10th International Conference on Thermal Energy Storage, Stockton, May 31-Jun. 2, 2006, retrieved from <https://intraweb.stockton.edu/eyos/energy—studies/content/docs/FINAL—PRESENTATIONS/4b-6%20.pdf> on Jan. 5, 2012, May 31, 2006, 8 pages.
Karp,“Planar Micro-optic Solar Concentration using Multiple Imaging Lenses into a Common Slab Waveguide”, In Proceedings of SPIE vol. 7407, Available at <http://psilab.ucsd.edu/research/slab—concentration/files/SPIE—Slab—Published.pdf>, Jan. 2009, 11 pages.
Kress,“Exit Pupil for Wearable See-through displays”, Downloaded From: http://proceeding.spiedigitallibrary.org/ on Jan. 31, 2015 Terms of Use: http://spiedl.org/terms, 2012, 8 pages.
Krishnan,“A Novel Hybrid Heat Sink Using Phase Change Materials for Transient Thermal Management of Electronics”, IEEE transactions on components and packaging technologies, vol. 28, No. 2, retrieved from <http://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=1432936> on Jan. 5, 2012, Jun. 2005, pp. 281-289.
L,“All-Nanoparticle Concave Diffraction Grating Fabricated by Self-Assembly onto Magnetically-Recorded Templates”, In Proceedings of Optical Express, vol. 21, Issue 1, Jan. 2013, 1 page.
Lanman,“Neareye Light Field Displays”, In Journal of ACM Transactions on Graphics, vol. 32, No. 6, Nov. 2013, 10 pages.
Large,“Parallel Optics in Waveguide Displays: a Flat Panel Autostereoscopic”, Display Technology, Journal of, Retrieved from <http://download.microsoft.com/download/D/2/E/D2E425F8-CF3C-4C71-A4A2-70F9D4081007/ParallelOpticsinWaveguideDisplaysMS090925.Final.pdf>, Jun. 21, 2010, pp. 1-7.
Lerner,“Penn Helps Rethink Smartphone Design With ‘Computational Sprinting’”, Penn News Release, Feb. 28, 2012, 2 pages.
Li,“Design Optimization of Reflective Polarizers for LCD Backlight Recycling”, Journal of Display Technology, vol. 5, No. 8, Available at <http://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=5196840 >, Aug. 2009, pp. 335-340.
Li, “Switchable Electro-optic Diffractive Lens with High Efficiency for Ophthalmic Applications”, PNAS Apr. 18, 2006 vol. 103 No. 16 6100-6104, Retrieved from: <http://www.pnas.org/content/103/16/6100.long> Feb. 22, 2012, Feb. 2, 2006, 4 pages.
Lindau,“Controlling the Groove Depth of Holographic Gratings”, In Proceedings of Optical System Design, Analysis, and Production, vol. 0399, Oct. 26, 1983, 2 pages.
Man,“IT Equipment Noise Emission Standards: Overview of New Development in the Next Edition of ISO/ECMA Standards”, In Proceedings of the 37th International Congress and Exposition on Noise Control Engineering, Available at <http://www.ecma-international.org/activities/Acoustics/Inter-noise%202008%20paper%20on%20ECMA-74%20updates.pdf 22 , Oct. 26, 2008, 8 pages.
Massenot,“Multiplexed holographic transmission gratings recorded in holographic polymer-dispersed liquid crystals: static and dynamic studies”, Retrieved at: http://oatao.univ-toulouse.fr/2874/, 2005, 8 pages.
McMillon,“Your Future iPhone May Be Stuffed With Wax”, Aug. 23, 2013, 3 pages.
Mei,“An all fiber interferometric gradient hydrophone with optical path length compensation”, In Proceedings of Summaries of Papers Presented at the Conference on Lasers and Electro-Optics, May 28, 1999, 2 pages.
Melcher,“LCoS for High Performance Displays” In Proceedings of LEOS 2003, Available at <http://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=1253048>, Oct. 27, 2003, pp. 812-813.
Minier,“Diffraction Characteristics of Superimposed Holographic gratings in Planar Optical waveguides”, IEEE Photonics Technology Letters, vol. 4, No. 10, Oct. 1992, 4 pages.
Moore,“Computational sprinting pushes smartphones till they're tired”, Michigan News Release, Feb. 28, 2012, 2 pages.
Morga,“History of SAW Devices”, In Proceedings of the IEEE International Frequency Control Symposium, May 27, 1998, 22 pages.
Nguyen,“Advanced Cooling System Using Miniature Heat Pipes in Mobile PC”, IEEE Transactions on Components and Packaging Technology, vol. 23, No. 1, Available at <http://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=833046&userType=inst>, Mar. 2000, pp. 86-90.
Owano,“Study explores computing bursts for smartphones”, PhysOrg.com, Feb. 21, 2012, 2 pages.
Papaefthymiou,“Computational Sprinting on a Hardware/Software Testbed”, In the Proceedings of the 18th Eighteenth International Conference on Architectural Support for Programming Languages and Operating Systems (ASPLOS), Mar. 2013., 12 pages.
Patrizio,“Researchers Working on Ways to Put 16-Core Processors in Smartphones”, Brighthand, Mar. 18, 2012, 2 pages.
Pu,“Exposure schedule for for multiplexing holograms in photopolymer films”, Retrieved at: lo.epfl.ch/webdav/site/lo/shared/1996/OE—35—2824—Oct1996.pdf, Oct. 1996, 6 pages.
Raghavan,“Computatbnal Sprinting”, In the Proceedings of the 18th Symposium on High Performance Computer Architecture (HPCA), Feb. 2012, 12 pages.
Raghavan,“Designing for Responsiveness With Computational Sprinting”, IEEE Micro's “Top Picks of 2012” Issue, May 2013, 8 pages.
Scott,“RearType: Text Entry Using Keys on the Back of a Device”, In Proceedings of 12th Conference on Human-Computer Interaction with Mobile Devices and Services, Retrieved from <https://research.microsoft.com/pubs/135609/reartype%20mobilehci.pdf>, Sep. 7, 2010, 9 pages.
Singh“Laser-Based Head-Tracked 3D Display Research”, Journal of Display Technology, vol. 6, No. 10, Available at <http://ieeexplore.ieee.org/stamp/stamp.jsp?tp=arnumber=5462999>, Oct. 2010, pp. 531-543.
Smalley,“Anisotropic Leaky-Mode Modulator for Holographic Video Displays”, In Proceedings of Nature, vol. 498, Jun. 20, 2013, 6 pages.
Stupar,“Optimization of Phase Change Material Heat Sinks for Low Duty Cycle High Peak Load Power Supplies”, IEEE transactions on components, packaging and manufacturing technology, retrieved from <http://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=6081913> Jan. 5, 2012, Nov. 15, 2011, 14 pages.
Tari,“CFD Analyses of a Notebook Computer Thermal Management System and a Proposed Passive Cooling Alternative”, IEEE Transactions on Components and Packaging Technologies, vol. 33, No. 2, retrieved from <http://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=5466211> on Dec. 30, 2011, Jun. 2010, pp. 443-452.
Teng,“Fabrication of nanoscale zero-mode waveguides using microlithography for single molecule sensing”, In Proceedings of Nanotechnology, vol. 23, No. 45, Jul. 7, 2012, 7 pages.
Tien,“Microcontact Printing of SAMs”, In Proceedings of Thin Films, vol. 24, May 28, 2014, 24 pages.
Travis,“Collimated Light from a Waveguide for a Display Backlight”, Optics Express—Retrieved from <http://download.microsoft.com/download/D/2/E/D2E425F8-CF3C-4C71-A4A2-70F9D4081007/OpticsExpressbacklightpaper.pdf>, Oct. 15, 2009, pp. 19714-19719.
Travis,“The Design of Backlights for View-Sequential”, Microsoft Corporation, Available at <http://download.microsoft.com/download/D/2/E/D2E425F8-CF3C-4C71-A4A2-70F9D4081007/Backlightforviewsequentialautostereo.docx>, Jul. 3, 2010, 4 pages.
Van“A Survey of Augmented Reality Technologies, Applications and Limitations”, The International Journal of Virtual Reailty, 2010, 9(2), Available at <http://www.ijvr.org/issues/issue2-2010/paper1%20.pdf>, Jun. 2010, pp, 1-19.
Walker,“Thermalright Ultra-120 Extreme CPU Cooler”, retrieved from <http://www.pro-clockers.com/cooling/66-thermalright-ultra-120-extreme-cpu-cooler.html> on Dec. 30, 2011, Jul. 2, 2009, 7 pages.
Westerinen,“Light Guide Display and Field of View”, U.S. Appl. No. 13/428,879, filed Mar. 23, 2012, 46 pages.
Wigdor,“LucidTouch: A See-Through Mobile Device”, In Proceedings of 20th Annual ACM symposium on User Interface Software and Technology, Retrieved from <http://dl.acm.org/citation.cfm?id=1294259>, Oct. 7, 2007, 10 pages.
Xie,“Fabrication of Varied-Line-Spacing Grating by Elastic Medium”, In Proceedings SPIE 5636, Holography, Diffractive Optics, and Applications II, Nov. 2004, 4 pages.
Yan,“Multiplexing holograms in the photopolymer with equal diffraction efficiency”, 2005, 9 pages.
Zharkova,“Study of the Dynamics of Transmission Gratings Growth on Holographic Polymer-Dispersed Liquid Crystals”, International Conference on Methods of Aerophysical Research, ICMAR 2008, 2008, 4 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2015/041930, Oct. 20, 2015, 12 Pages.
“International Search Report and Written Opinion”, Application No. PCT/US2015/041900, Oct. 21, 2015, 12 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2015/041909, Oct. 20, 2015, 13 pages.
“Non-Final Office Action”, U.S. Appl. No. 13/774,875, Sep. 16, 2015, 8 pages.
“Notice of Allowance”, U.S. Appl. No. 14/447,464, Nov. 9, 2015, 10 pages.
“Restriction Requirement”, U.S. Appl. No. 14/617,697, Nov. 30, 2015, 6 pages.
Ando, “Development of Three Dimensional Microstrages Using Inclined Deep-Reactive Ion Etching”, Journal of Microelectomechanical Systems, Jun. 1, 2007, 10 pages.
Gila,“First Results From a Multi-Ion Beam Lithography and Processing System at The University of Florida”, AIP Conference Proceedings, Jun. 1, 2011, 6 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2015/042371, Oct. 2, 2015, 10 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2015/042187, Oct. 20, 2015, 10 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2015/042226, Oct. 27, 2015, 10 Pages.
“International Search Report and Written Opinion”, Application No. PCT/US2015/042205, Oct. 30, 2015, 10 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2015/042218, Nov. 6, 2015, 10 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2015/042259, Oct. 12, 2015, 11 pages.
“International Search Report and Written Opinion”, Application No. PCT/US2015/041046, Nov. 9, 2015, 15 pages.
“Non-Final Office Action”, U.S. Appl. No. 14/447,419, Feb. 2, 2016, 8 pages.
“Non-Final Office Action”, U.S. Appl. No. 14/617,574, Feb. 26, 2016, 22 pages.
“Non-Final Office Action”, U.S. Appl. No. 14/617,710, Mar. 2, 2016, 16 pages.
“Notice of Allowance”, U.S. Appl. No. 14/617,697, Feb. 29, 2016, 7 pages.
“Notice of Allowance”, U.S. Appl. No. 14/617,723, Feb. 9, 2016, 10 pages.
“Supplemental Notice of Allowance”, U.S. Appl. No. 14/447,464, Jan. 12, 2016, 2 pages.
Antonopoulos,“Efficient Updates for Web-Scale Indexes over the Cloud”, IEEE 28th International Conference on Data Engineering Workshops, Apr. 2012, 8 pages.
Garcia,“COMET: Content Mediator Architecture for Content-Aware Networks”, In IEEE Future Network & Mobile Summit, 2011, 8 pages.
Levandoski,“Ranking and New Database Architectures”, In Proceedings of the 7th International Workshop on Ranking in Databases, Aug. 2013, 4 pages.
“Adobe Audition / Customizing Workspaces”, Retrieved From: <http://help.adobe.com/en—US/audition/cs/using/WS9FA7B8D7-5991-4e05-B13C-4C85DAF1F051.html> Jul. 5, 2014, May 18, 2011, 6 Pages.
“Always Connected”, Available at: http://www.samsung.com/global/microsite/galaxycamera/nx/, Jun. 24, 2013, 5 pages.
“Controlling Your Desktop's Power Management”, Retrieved From: <http://www.vorkon.de/SU1210.001/drittanbieter/Dokumentation/openSUSE—11.2/manual/sec.gnomeuser.start.power—mgmt.html> Jul. 7, 2014, 6 Pages.
“Display Control”, Retrieved From: <http://www.portrait.com/technology/display-control.html> Jul. 4, 2014, Jun. 24, 2013, 5 Pages.
“Manage Multiple Windows”, Retrieved From: <http://windows.microsoft.com/en-hk/windows/manage-multiple-windows#1TC=windows-7> Jul. 8, 2014, 4 Pages.
“Merge Operator”, Retrieved on: Jun. 3, 2014, Available at: https://github.com/facebook/rocksdb/wiki/Merge-Operator, 10 pages.
“Organize Your Desktop Workspace for More Comfort with WindowSpace.”, Retrieved From: <http://www.ntwind.com/software/windowspace.html> Jul. 4, 2014, Sep. 19, 2008, 5 pages.
“Restriction Requirement”, U.S. Appl. No. 14/447,419, Aug. 4, 2015, 6 pages.
“SizeUp the Missing Window Manager”, Retrieved From: <https://www.irradiatedsoftware.com/sizeup/> Jul. 4, 2014, Jan. 17, 2013, 4 Pages.
“Using Flickr to Organize a Collection of Images”, Available at: http://www.jiscdigitalmedia.ac.uk/guide/using-flickr-to-organise-a-collection-of-images, Apr. 2, 2013, 17 pages.
“Window Magnet”, Retrieved From: <http://magnet.crowdcafe.com/> Jul. 4, 2014, Jun. 23, 2011, 2 Pages.
“Windows 7: Display Reminder When Click on Shutdown?”, Retrieved From: <http://www.sevenforums.com/customization/118688-display-reminder-when-click-shutdown.html> Jul. 8, 2014, Oct. 18, 2010, 5 Pages.
“Working with Windows”, Retrieved From: <http://windows.microsoft.com/en-us/windows/working-with-windows#1TC=windows-7> Jul. 4, 2014, 10 Pages.
Ashraf,“Winsplit Revolution: Tile, Resize, and Position Windows for Efficient Use of Your Screen,” Retrieved From: <http://dottech.org/11240/winsplit-revolution-tile-resize-and-position-windows-for-efficient-use-of-your-screen/> Jul. 8, 2014, Dec. 18, 2011, 4 Pages.
Callaghan,“Types of writes”, Available at: http://smalldatum.blogspot.in/2014/04/types-of-writes.html, Apr. 17, 2014, 3 pages.
Cohen, “Automatic Stratagies in the Siemens RTL Tiled Window Manager”, In Proceedings: The 2nd IEEE Conference on Computer Workstations, Mar. 7, 1988, pp. 111-119.
Eckel, “Personalize Alerts with the Help of OS X Mavericks Notifications”, Retrieved From: <http://www.techrepublic.com/article/customize-os-x-mavericks-notifications-to-personalize-alerts/> Jul. 8, 2014, Mar. 10, 2014, 7 Pages.
Elnaka,“Real-Time Traffic Classification for Unified Communication Networks”, In Proceedings of International Conference on Selected Topics in Mobile and Wireless Networking, Aug. 19, 2013, 6 pages.
Hepburn,“Color: The Location used Social Photo App”, Available at: http://www.digitalbuzzblog.com/color-the-location-based-social-photo-iphone-app/, Mar. 27, 2011, 12 pages.
Johnson,“Samsung Galaxy Tab Pro 10.1 Review”, Retrieved From: <http://hothardware.com/Review/Samsung-Galaxy-Tab-Pro-101-Review/?page=3#!baG2DY > Jul. 9, 2014, Mar. 21, 2014, 10 Pages.
Kandogan,“Elastic Windows: Improved Spatial Layout and Rapid Multiple Window Operations”, In Proceedings of the Workshop on Advanced Visual Interfaces, May 27, 1996, 10 Pages.
Levandoski, “Latch-Free, Log-Structured Storage for Multiple Access Methods”, U.S. Appl. No. 13/924,567, filed Jun. 22, 2013, 51 pages.
Levandoski,“The Bw-Tree: A B-tree for New Hardware Platforms”, In IEEE 29th International Conference on Data Engineering, Apr. 8, 2013, 12 pages.
Li,“QRON: QoS-Aware Routing in Overlay Networks”, In Proceedings of IEEE Journal on Selected Areas in Communications, vol. 22, No. 1, Jan. 2004, 12 pages.
Mack,“Moto X: The First Two Weeks” , Retrieved From: <http://www.gizmag.com/two-weeks-motorola-google-moto-x-review/28722/> Jul. 8, 2014, Aug. 16, 2013, 8 pages.
O'Reilly,“How to Use the Microsoft Surface Touch Screen and Keyboard”, Retrieved From: <http://www.cnet.com/how-to/how-to-use-the-microsoft-surface-touch-screen-and-keyboard/> Jul. 5, 2014, Nov. 6, 2012, 5 Pages.
Paut,“Three Windows Multitasking Features That Help Maximize Your Screen Space”, Retrieved From: <http://www.pcworld.com/article/2094124/three-windows-multitasking-features-that-help-maximize-your-screen-space.html> Jul. 4, 2014, Feb. 4, 2014, 4 Pages.
Prohaska,“Fast Updates with TokuDB”, Available at: http://www.tokutek.com/2013/02/fast-updates-with-tokudb/, Feb. 12, 2013, 2 pages.
Thurrott,“Nokia Lumia “Black”, Glance 2.0”, Retrieved From:<http://winsupersite.com/windows-phone/nokia-lumia-black-glance-20> Jul. 8, 2014, Jan. 11, 2014, 3 Pages.
Vranjes,“Application Window Divider Control for Window Layout Management”, U.S. Appl. No. 13/863,369, filed Apr. 15, 2013, 21 pages.
Wiebe,“Using screen space efficiently with Gridmove”. Available at: http://lowerthought.wordpress.com/2010/05/15/using-screen-space-efficiently-with-gridmove/, May 15, 2010, 2 pages.
Corrected Notice of Allowance, U.S. Appl. No. 14/617,723, Apr. 20, 2016, 7 pages.
Final Office Action, U.S. Appl. No. 13/774,875, Apr. 22, 2016, 10 pages.
Final Office Action, U.S. Appl. No. 14/447,419, May 17, 2016, 10 pages.
International Search Report and Written Opinion, Application No. PCT/US2016/015496, Apr. 11, 2016, 11 pages.
International Search Report and Written Opinion, Application No. PCT/US2016/015873, May 23, 2016, 11 pages.
International Search Report and Written Opinion, Application No. PCT/US2016/016028, May 25, 2016, 11 pages.
International Search Report and Written Opinion, Application No. PCT/US2016/016241, Apr. 20, 2016, 12 pages.
International Search Report and Written Opinion, Application No. PCT/US2016/015869, May 12, 2016, 12 pages.
International Search Report and Written Opinion, Application No. PCT/US2016/016029, May 12, 2016, 12 pages.
International Search Report and Written Opinion, Application No. PCT/US2016/016027, May 17, 2016, 13 pages.
International Search Report and Written Opinion, Application No. PCT/US2016/019006, May 12, 2016, 14 pages.
International Search Report and Written Opinion, Application No. PCT/US2016/016242, May 27, 2016, 14 pages.
International Search Report and Written Opinion, Application No. PCT/US2016/015497, May 19, 2016, 17 pages.
Non-Final Office Action, U.S. Appl. No. 14/335,927, Jun. 3, 2016, 8 pages.
Non-Final Office Action, U.S. Appl. No. 14/617,606, May 23, 2016, 12 pages.
Notice of Allowance, U.S. Appl. No. 14/617,723, May 24, 2016, 7 pages.
Notice of Allowance, U.S. Appl. No. 14/617,746, Apr. 11, 2016, 7 pages.
Restriction Requirement, U.S. Appl. No. 14/617,683, May 9, 2016, 6 pages.
Kim,“Determination of small angular displacement by moire fringes of matched radial-parallel gratings”, Applied Optics, vol. 36, No. 13, May 1997, 8 pages.
Levola,“Diffractive optics for virtual reality displays”, Journal of the Society for Information Display—SID, Jan. 1, 2006, 9 pages.
Theocaris,“Radial Gratings as Moire Gauges”, Journal of Physics E. Scientific Instruments, Jun. 1, 1968, 6 pages.
International Search Report and Written Opirtion, Application No. PCT/US2016/015871, Jun. 13, 2016, 13 pages.