Image light guide with multi-wavelength incoupling diffractive optical element
The image light guide with incoupling and outcoupling diffractive optical elements addresses the limitations of conventional guides by expanding the eyebox and enhancing light distribution, resulting in improved viewing experience and reduced manufacturing complexity.
Patent Information
- Application Number
- JP2023549580
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-03-04
- Filing Date
- 2022-03-04
- Publication Date
- 2025-11-10
- Estimated Expiration
- 2042-03-04
AI Technical Summary
Conventional image light guides in head-mounted displays suffer from limited eyebox size, uneven light distribution, and increased bulk and manufacturing complexity due to beam management functions, leading to issues like hot spots and restricted movement tolerances.
An image light guide with a substrate featuring an incoupling and outcoupling diffractive optical element, each with specific periodic structures, that diffract and redirect image-bearing light to expand the eyebox in two dimensions while maintaining image integrity, using a combination of diffraction and total internal reflection.
The solution enhances light distribution across the field of view, reduces hot spots, and expands the eyebox, improving the viewer's experience by reducing sensitivity to eye position and maintaining image quality.
Smart Images

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Abstract
Description
[Technical Field]
[0001] FIELD OF THE DISCLOSURE This disclosure relates generally to electronic display devices, and more particularly to display devices that utilize an image light guide having a diffractive optical element for transmitting image-bearing light to a viewer. [Background technology]
[0002] Head-mounted displays (HMDs) and virtual image near-eye displays are being developed for a wide range of applications, including military, commercial, industrial, firefighting, and entertainment applications. In many of these applications, it is valuable to create a virtual image that can be visually superimposed on a real-world image in the HMD user's field of view. Optical image light guides can deliver image-bearing light to the viewer in a small space to direct the virtual image toward the viewer's pupil and enable this superimposition function.
[0003] While conventional image light guide configurations have resulted in significant reductions in the bulk, weight, and overall cost of near-eye display optics, further improvements are needed. In some cases, the size of the eyebox is limited, forcing HMD designs to limit tolerances for movement and device placement. Furthermore, light is often unevenly distributed across the field of view, which can lead to hot spots, such as higher levels of light in the center of the field of view and lower levels of light in the periphery of the field of view. Beam management functions within the waveguide, including beam expansion and light distribution functions, can increase the size of the waveguide as well as its manufacturing cost and complexity. Summary of the Invention
[0004] In a first exemplary embodiment, an image light guide for conveying a virtual image includes a substrate operable to propagate an image-bearing light beam along its length. An incoupling diffractive optical element is formed along the substrate and operable to diffract the image-bearing light beam from an image source into the substrate in an angle-encoded manner. An outcoupling diffractive optical element is formed along the substrate and operable to diffract the image-bearing light beam from the substrate in an angle-decoded manner. The incoupling diffractive optical element has three plurality of periodic diffractive structures, and the outcoupling diffractive optical element has two plurality of periodic diffractive structures that have periodic equivalence to two of the three plurality of periodic diffractive structures of the incoupling diffractive optical element. The two plurality of periodic diffractive structures of the outcoupling diffractive optical element are also parallel to two of the three plurality of periodic diffractive structures of the incoupling diffractive optical element. [Brief explanation of the drawings]
[0005] The accompanying drawings are incorporated herein as part of this specification. The drawings described herein illustrate embodiments of the disclosed subject matter and illustrate selected principles and teachings of the present disclosure. However, the drawings do not illustrate every possible implementation of the disclosed subject matter and are not intended to limit the scope of the present disclosure in any way.
[0006] [Figure 1] FIG. 1 shows a simplified cross-sectional view of an image light guide showing the expansion of an image-bearing beam along the propagation direction to expand one dimension of the eyebox. [Figure 2] FIG. 2 shows a perspective view of an image light guide with a turning grating showing the expansion of the image-bearing beam perpendicular to the direction of propagation to expand the second dimension of the eyebox. [Figure 3A] FIG. 3A shows a schematic plan view of an image light guide having an incoupling diffractive optical element with three patterns of periodic diffractive structures, according to an exemplary embodiment of the disclosed subject matter. [Figure 3B]FIG. 3B shows a schematic plan view of an image light guide having an incoupling diffractive optical element with three patterns of periodic diffractive structures, according to an exemplary embodiment of the disclosed subject matter. [Figure 3C] FIG. 3C shows a schematic plan view of an image light guide having an incoupling diffractive optical element with three patterns of periodic diffractive structures, according to an exemplary embodiment of the disclosed subject matter. [Figure 3D] FIG. 3D shows a portion of a schematic diagram of the path of a first wavelength range of image-bearing light in an image light guide according to FIG. 3A. [Figure 3E] FIG. 3E shows a portion of a schematic diagram of the path of a second wavelength range of image-bearing light in an image light guide according to FIG. 3A. [Figure 4A] FIG. 4A shows a schematic plan view of an image light guide having an intermediate diffractive optical element positioned at least partially around an incoupling diffractive optical element, according to an exemplary embodiment of the disclosed subject matter. [Figure 4B] FIG. 4B shows a schematic plan view of an image light guide having an intermediate diffractive optical element positioned at least partially around an incoupling diffractive optical element, according to an exemplary embodiment of the disclosed subject matter. [Figure 4C] FIG. 4C shows a schematic plan view of an image light guide having an intermediate diffractive optical element positioned at least partially around an incoupling diffractive optical element, according to an exemplary embodiment of the presently disclosed subject matter. [Figure 5A] FIG. 5A shows a schematic plan view of an image light guide having incoupling and outcoupling diffractive optical elements configured as a single continuous diffractive pattern, according to an exemplary embodiment of the disclosed subject matter. [Figure 5B] FIG. 5B shows a schematic plan view of an image light guide having incoupling and outcoupling diffractive optical elements configured as a single continuous diffractive pattern, according to an exemplary embodiment of the disclosed subject matter. [Figure 5C]FIG. 5C shows a schematic plan view of an image light guide having incoupling and outcoupling diffractive optical elements configured as a single continuous diffractive pattern, according to an exemplary embodiment of the disclosed subject matter. [Figure 6] FIG. 6 shows a schematic diagram of a portion of a composite grating pattern operable to expand and outcouple an image-bearing beam, according to an exemplary embodiment of the disclosed subject matter. [Figure 7] FIG. 7 illustrates a stacked image light guide system according to an exemplary embodiment of the disclosed subject matter. [Figure 8] FIG. 8 illustrates a display system for augmented reality viewing using an image light guide, according to an exemplary embodiment of the disclosed subject matter. [Figure 9] FIG. 9 illustrates a periodic grating structure of an incoupling diffractive optical element according to an exemplary embodiment of the disclosed subject matter. [Figure 10] FIG. 10 shows a schematic plan view of an image light guide having an incoupling diffractive optical element with three patterns of periodic diffractive structures, according to an exemplary embodiment of the disclosed subject matter. DETAILED DESCRIPTION OF THE INVENTION
[0007] It should be understood that the present invention may assume various alternative orientations and step arrangements unless expressly specified to the contrary. It should also be understood that the specific assemblies and systems illustrated in the accompanying drawings and described in the following specification are merely exemplary embodiments of the inventive concepts defined herein. Accordingly, specific dimensions, orientations, or other physical characteristics relating to the disclosed embodiments are not to be considered limiting unless expressly stated otherwise. Also, although not applicable, like elements in the various embodiments described herein may be generally referred to within this section of the specification using like reference numerals.
[0008] As used herein, terms such as "first," "second," etc. do not necessarily imply any order, sequence, or priority relationship, but are merely used to more clearly distinguish one element or set of elements from another, unless otherwise specified.
[0009] As used herein, the terms "viewer," "operator," "observer," and "user" are considered equivalent and refer to a person or machine wearing a device having an imaging light guide and / or viewing an image using a device having an imaging light guide.
[0010] As used herein, the term "set" refers to a non-empty set, as the concept of a collection of elements or members of a set is commonly understood in elementary mathematics. The term "subset," unless explicitly stated otherwise, is used herein to refer to a non-empty proper subset of a larger set, i.e., a subset of a larger set that has one or more members. For a set S, a subset may include the complete set S. However, a "proper subset" of set S is strictly contained in set S and excludes at least one member of set S.
[0011] As used herein, the terms "coupled," "coupler," or "coupling" in the optical context refer to a connection in which light travels from one optical medium or device to another.
[0012] As used herein, the term "beam expansion" is intended to mean the duplication of a beam through multiple encounters with optical elements to provide exit pupil dilation in one or more directions. Similarly, as used herein, the terms "expanded image-bearing light beam" and "expanded set of angularly related beams" refer to light beams that have been duplicated through multiple encounters with optical elements to provide exit pupil dilation in one or more directions.
[0013] Optical systems such as HMDs can generate virtual image displays. Unlike methods for generating real images, virtual images are not generated on the display surface. That is, when a display surface is positioned at the perceived location of the virtual image, no image is generated on the surface. Displaying virtual images offers numerous unique advantages in augmented reality presentations. For example, the apparent size of the virtual image is not limited by the size or location of the display surface. Furthermore, the source object of the virtual image can be small; for example, a magnifying glass provides a virtual image of an object. Compared to systems that project real images, creating a virtual image that appears to be at a distance can provide a more realistic viewing experience. Providing a virtual image also eliminates the need to correct for screen artifacts, which is required when projecting a real image.
[0014] An image light guide may display a virtual image using image-bearing light from a light source, such as a projector. For example, a collimated, relative angle-encoded light beam from the projector is coupled into a planar waveguide by an input coupling, such as an in-coupling diffractive optical element, which can be attached to or formed on the surface of the planar waveguide or embedded within the waveguide. Such a diffractive optical element can be formed as a diffraction grating, a holographic optical element (HOE), or by other known methods. For example, a diffraction grating can be formed by a surface relief. After propagating along the waveguide, the diffracted light can be redirected out of the waveguide by a similar output coupling, such as an out-coupling diffractive optical element, which can be positioned to provide pupil dilation along one dimension of the virtual image. Additionally, a turning grating can be positioned on or within the waveguide to provide pupil dilation in the orthogonal dimension of the virtual image. The image-bearing light output from the waveguide provides an expanded eyebox for the viewer.
[0015] As shown in FIG. 1 , the image light guide 10 may include a planar waveguide 22 having plane-parallel surfaces 12, 14. The waveguide 22 includes a transparent substrate S, which may be made of optical glass or plastic, for example, having a first surface 12 and a second surface 14 that are plane-parallel. In this example, an incoupling diffractive optical element IDO and an outcoupling diffractive optical element ODO are disposed on the second surface 14, and the incoupling diffractive optical element IDO is a reflective diffraction grating through which the image-bearing light WI is coupled into the planar waveguide 22. However, the incoupling diffractive optical element IDO may alternatively be a volume hologram, other holographic diffractive element, or other type of optical component that provides diffraction for the incident image-bearing light WI. The incoupling diffractive optical element IDO may be located on the first surface 12 or the second surface 14 of the planar waveguide 22 and may be a transmissive or reflective optical element depending on the direction from which the image-bearing light WI approaches the planar waveguide 22.
[0016] When used as part of a virtual image display system, the incoupling diffractive optical element IDO couples image-bearing light WI from a real image source 18 into the substrate S of the planar waveguide 22. Any real image or image dimension is first converted into an array of overlapping, angle-related beams that encode different locations within the image for presentation to the incoupling diffractive optical element IDO. The image-bearing light WI is diffracted (generally through the first diffraction order) and thereby redirected by the incoupling diffractive optical element IDO into the planar waveguide 22 by total internal reflection (“TIR”) as an image-bearing light beam WG for further propagation along the planar waveguide 22. Although diffracted along the boundaries established by TIR into a generally more condensed range of angle-related beams, the image-bearing light WG preserves the image information in angle-encoded form. The outcoupling diffractive optical element ODO receives the coded image-bearing light WG and diffracts the image-bearing light WG exiting the planar waveguide 22 as image-bearing light WO toward the intended location of the viewer's eye (typically through the first diffraction order). Generally, the outcoupling diffractive optical element ODO is designed symmetrically with respect to the incoupling diffractive optical element IDO to restore the original angular relationship of the image-bearing light WI from the output angle-related beams of the image-bearing light WO. However, to increase one dimension of overlap between the angle-related beams within the so-called eyebox E, where a virtual image can be seen, the outcoupling diffractive optical element ODO is positioned to encounter the image-bearing light WG multiple times and diffract only a portion of the image-bearing light WG at each encounter. The multiple encounters along the length of the outcoupling diffractive optical element ODO have the effect of increasing one dimension of each of the angle-related beams of the image-bearing light WO, thereby expanding one dimension of the eyebox E where the beams overlap. The expanded eyebox E reduces the sensitivity to the position of the viewer's eyes for viewing the virtual image.
[0017] An outcoupling diffractive optical element having a refractive index variation along a single dimension can expand one dimension of the eyebox by replicating individual angle-related beams in the direction of propagation along the waveguide during an encounter with the outcoupling diffractive optical element. Furthermore, an outcoupling diffractive optical element having a refractive index variation along a second dimension can expand the second dimension of the eyebox, providing a two-dimensional expansion of the eyebox. The refractive index variation along the first dimension of the outcoupling diffractive optical element can be arranged to diffract a portion of the energy of each beam emerging from the waveguide upon each encounter through a desired first-order diffraction, while another portion of the beam's energy is preserved for further propagation in the original direction through a zeroth-order diffraction. The refractive index variation along the second dimension of the outcoupling diffractive optical element can be arranged to diffract a portion of the energy of each beam upon each encounter through a desired first-order diffraction into a direction angled relative to the beam's original propagation direction, while another portion of the beam's energy is preserved for further propagation in the original direction through a zeroth-order diffraction.
[0018] The outcoupling diffractive optical element ODO is shown as a transmissive diffraction grating located on the second surface 14 of the planar waveguide 22. However, like the incoupling diffractive optical element IDO, the outcoupling diffractive optical element ODO may be located on either the first surface 12 or the second surface 14 of the planar waveguide 22 and may be transmissive, reflective, or a combination depending on the intended direction in which the image-bearing light WG exits the planar waveguide 22.
[0019] As shown in FIG. 2 , the image light guide 20 may be arranged to expand the eyebox E in two dimensions, i.e., along both the X-axis and the Y-axis of the intended image. To achieve the second dimension of beam expansion, the incoupling diffractive optical element IDO with grating vector K0 is oriented to diffract a portion of the image-bearing light WI toward the intermediate optical element TO with grating vector K1, which is oriented to diffract a portion of the image-bearing light WG in a reflective mode toward the outcoupling diffractive optical element ODO. The intermediate optical element TO may also be referred to herein as a turning grating or turning optical element. In one embodiment, the intermediate optical element TO is a surface relief grating. In another embodiment, the intermediate optical element TO is a holographic optical element. Only a portion of the image-bearing light WG is diffracted by each of multiple encounters with the intermediate optical element TO, thereby laterally replicating each of the angularly related beams of the image-bearing light WG approaching the outcoupling diffractive optical element ODO. The image-bearing light WO exits the planar waveguide 22 after the intermediate optical element TO redirects the image-bearing light WG towards the outcoupling diffractive optical element ODO to longitudinally replicate the angle-related beam of the image-bearing light WG into a second dimension. The grating vectors, such as the depicted grating vectors K0, K1, K2, extend in a direction perpendicular to the diffractive features (e.g., grooves, lines, or rulings) of the diffractive optical elements IDO, TG, ODO and have a magnitude that is the reciprocal of the period or pitch D (i.e., the center-to-center distance between grooves) of the diffractive optical elements IDO, TG, ODO. The incoupling diffractive optical element IDO, the intermediate optical element TO, and the outcoupling diffractive optical element ODO may each have a different period or pitch D.
[0020] Continuing with FIG. 2 , incoupling diffractive optical element IDO receives incident image-bearing light WI, which includes a series of angle-related beams corresponding to individual pixels, or equivalent locations, within an image generated by image source 18. Image source 18, operable to generate a range of angle-encoded beams to generate a virtual image, may be a combination of, but is not limited to, an actual display device combined with focusing optics, a beam scanner to more directly set the beam angle, or a one-dimensional actual display device used with a scanner. In some embodiments, image source 18 includes one or more light-emitting diodes (LEDs), organic LEDs (OLEDs), or ultra-LEDs (uLEDs). In other embodiments, image source 18 is a color-field sequential projector system operable to pulse image-bearing light in multiple wavelength bands, e.g., light from within the red, green, and blue wavelength bands, to a digital light modulator / micromirror array (“DLP”) or liquid crystal on silicon (“LCOS”) display. In a further embodiment, image source 18 includes one or more picoprojectors, each configured to generate a single primary color band (e.g., red, green, or blue). In another embodiment, image source 18 includes a single picoprojector arranged to generate all three primary color bands (e.g., red, green, and blue). In one example, the three primary color bands are a green band having a wavelength ranging between 495 nm and 570 nm, a red band having a wavelength ranging between 620 nm and 750 nm, and a blue band having a wavelength ranging between 450 nm and 495 nm.
[0021] The image light guide 20 outputs a series of expanded, angle-related beams in two dimensions of the image by providing multiple encounters of the image-bearing light WG with both the intermediate optical element TO and the outcoupling diffractive optical element ODO at different orientations. In the original orientation of the planar waveguide 22, the intermediate diffraction grating TG provides beam expansion in the Y-axis direction, and the outcoupling diffractive optical element ODO provides similar beam expansion in the X-axis direction. The reflective properties and respective periods D of the diffractive optical elements IDO, ODO, TG, together with the orientations of their respective grating vectors, provide beam expansion in two dimensions while maintaining the intended relationship between the angle-related beams of image-bearing light WI that are output from the image light guide 20 as image-bearing light WO.
[0022] Although the image-bearing light WI input to the image light guide 20 is coded into a series of different angle-related beams by the incoupling diffractive optical element IDO, the information necessary to reconstruct the image is preserved by considering the systematic effects of the incoupling diffractive optical element IDO. The intermediate optical element TO, located at an intermediate position between the incoupling diffractive optical element IDO and the outcoupling diffractive optical element ODO, is typically positioned so as not to induce any significant changes to the coding of the image-bearing light WG. The outcoupling diffractive optical element ODO is typically positioned symmetrically with respect to the incoupling diffractive optical element IDO, e.g., including diffractive features that share the same period. Similarly, the period of the intermediate optical element TO typically matches the common period of the incoupling diffractive optical element IDO and the outcoupling diffractive optical element ODO. As shown in FIG. 2, the grating vector K1 of the intermediate optical element TO may be oriented at 45 degrees with respect to the other grating vectors K0 and K2 (all as undirected line segments). However, in one embodiment, the grating vector K1 of the intermediate optical element TO is oriented at 60 degrees relative to the grating vectors K0, K2 of the incoupling diffractive optical element IDO and the outcoupling diffractive optical element ODO in such a way that the image-bearing light WO is turned by 120 degrees. By orienting the grating vector K1 of the intermediate optical element TO at 60 degrees relative to the grating vector K0 of the incoupling diffractive optical element IDO and the grating vector K2 of the outcoupling diffractive optical element ODO, the grating vectors K0, K2 are also oriented at 60 degrees relative to each other (again, considered as undirected line segments). The three grating vectors K0, K1, K2 (as directed line segments) form an equilateral triangle and sum to a zero vector magnitude, avoiding asymmetric effects that can result in undesirable aberrations, including chromatic dispersion.
[0023] The image-bearing light WI diffracted into the planar waveguide 22 is effectively encoded by the incoupling diffractive optical element IDO, regardless of whether the incoupling diffractive optical element IDO uses a grating, hologram, prism, mirror, or some other mechanism. The reflection, refraction, and / or diffraction of light that occurs at the incoupling diffractive optical element IDO must be decoded accordingly by the outcoupling diffractive optical element ODO to recreate the virtual image presented to the viewer. The intermediate optical element TO, located at an intermediate position between the incoupling diffractive optical element IDO and the outcoupling diffractive optical element ODO, is typically designed and oriented so as not to induce any changes to the encoded light. The outcoupling diffractive optical element ODO decodes the image-bearing light WG into its original or desired form of an angle-related beam expanded to fill the eyebox E.
[0024] It is relevant whether any symmetry is maintained between the intermediate optical element TO and the incoupling diffractive optical element IDO and the outcoupling diffractive optical element ODO, or whether changes to the angle-related beam coding of the image-bearing light WI occur along the planar waveguide 22, the intermediate optical element TO, the incoupling diffractive optical element IDO and the outcoupling diffractive optical element ODO, so that the image-bearing light WO output from the planar waveguide 22 retains or otherwise maintains the original or desired form of the image-bearing light WI for generating the intended virtual image.
[0025] The letter "R" represents the orientation of the virtual image as seen by a viewer with their eyes positioned within the eyebox E. As shown, the orientation of the letter "R" in the represented virtual image coincides with the orientation of the letter "R" encoded by the image-bearing light WI. A change in the rotation about the Z-axis or angular orientation of the incident image-bearing light WI relative to the XY plane causes a corresponding symmetric change in the rotation or angular orientation of the output light from the outcoupling diffractive optical element ODO. From the image orientation perspective, the intermediate optical element TO simply acts as a type of optical relay, providing expansion of the angle-encoded beam of the image-bearing light WG along one axis of the image (e.g., along the Y-axis). The outcoupling diffractive optical element ODO further expands the angle-encoded beam of the image-bearing light WG along another axis of the image (e.g., along the X-axis) while maintaining the original orientation of the virtual image encoded by the image-bearing light WI. As shown in FIG. 2, the intermediate optical element TO may be a tilted or square diffraction grating disposed on the front or back surface of the planar waveguide 22. Alternatively, the intermediate optical element TO may be a blazed diffraction grating.
[0026] The present disclosure provides an image light guide having improved diffraction efficiency and output intensity of image-bearing light across an output aperture. More specifically, the present disclosure provides a waveguide having, among other things, a compound incoupling diffractive optical element and a compound outcoupling diffractive optical element, operable to expand an image-bearing light beam in two dimensions and output the expanded image-bearing light beam toward the eyebox.
[0027] 3A , in one embodiment, the image light guide 100 may have an incoupling diffractive optical element IDO and an outcoupling diffractive optical element ODO formed on / in a first surface 102 of the image light guide 100. Alternatively, one or both of the incoupling diffractive optical element IDO and the outcoupling diffractive optical element ODO may be formed on / in a second surface of the image light guide 100, which is located opposite the first surface 102. In one embodiment, the incoupling diffractive optical element IDO includes three multiple periodic grating structures 104, 106, 108. 9 , the incoupling diffractive optical element IDO may include a first set of periodic linear grating structures 104 parallel to the Y-axis, a second set of periodic linear grating structures 106 rotated / offset by more than 60 degrees (e.g., 70°) relative to the first set of periodic linear grating structures 104, and a third set of periodic linear grating structures 108 rotated / offset by more than −60 degrees (e.g., −70°) relative to the first set of periodic linear grating structures 104. The first set of periodic grating structures 104 of the incoupling diffractive optical element IDO has a grating vector K1 extending perpendicular to the periodic grating structure 104. The second and third sets of grating structures 106, 108 of the incoupling diffractive optical element IDO have second and third grating vectors K2, K3 extending perpendicular to the periodic grating structures 106, 108, respectively. In one embodiment, the first set of periodic grating structures 104 has a different periodicity than the second and third sets of periodic grating structures 106, 108.
[0028] During operation, at least a portion of an image-bearing light beam incident on the first, second, and third sets of periodic grating structures 104, 106, 108 of the incoupling diffractive optical element IDO is diffracted and directed into the image light guide 100 as image-bearing light WG for further propagation within the image light guide 100 by TIR and / or diffractive reflection. To illustrate one or more characteristics of embodiments of the present disclosure, the image light guide 100 is particularly described and illustrated herein with respect to the optical paths of one or more portions of the beam of image-bearing light WI that, upon incidence thereon, are positioned perpendicular to the plane of the incoupling diffractive optical element IDO, unless otherwise noted. However, one skilled in the art will recognize that these descriptions are not limiting and that the image-bearing light WI incident on the incoupling diffractive optical element IDO can be positioned at any angle and at any wavelength for which the system is optimized. It should be understood that optical path is intended to include any optical path within the optimized system by which image-bearing light may be coupled into the substrate and may further include a range of wavelengths and a range of angles of incidence. For example, in one embodiment, the image-bearing light WI incident on the incoupling diffractive optical element IDO is positioned at any angle and any wavelength within the range of angles of incidence and wavelength for which the system is optimized. In one embodiment, the range of angles of incidence is between zero (normal incidence) and about 10 degrees from the surface normal. In another embodiment, the range of angles of incidence is between zero and about 30 degrees from the surface normal. In yet another embodiment, the range of angles of incidence is between zero and about 45 degrees from the surface normal. In a further embodiment, the range of angles of incidence is between zero and about 60 degrees from the surface normal. In another example, when the centerline of the beam of image-bearing light WI is incident on the incoupling diffractive optical element IDO along a direction perpendicular to the incoupling diffractive optical element IDO, a portion of the image-bearing light WI is incident on each of the first, second, and third sets of periodic grating structures 104, 106, 108. In this example, the portion of the image-bearing light WI is directed toward the outcoupling diffractive optical element ODO parallel to the directions of the first grating vector K1, the second grating vector K2, and the third grating vector K3.The second set of periodic grating structures 106 and the third set of periodic grating structures 108 direct portions of the image-bearing light toward outer regions (in the Y-axis direction) of the outcoupling diffractive optical element ODO. By directing portions of the image-bearing light incident on the incoupling diffractive optical element IDO toward outer regions (in the Y-axis direction) of the outcoupling diffractive optical element ODO, the intensity of the image-bearing light outcoupled from the center (in the Y-axis direction) of the outcoupling diffractive optical element ODO is reduced. This configuration reduces or eliminates hot spots in the eyebox.
[0029] The first, second, and third sets of periodic grating structures 104, 106, 108 lack regular hexagonal symmetry. As shown in FIG. 9 , in one embodiment, the incoupling diffractive optical element IDO is formed from a plurality of hexagonal unit cells 109. The hexagonal unit cells 109 describe an irregular hexagon. For example, if the periodic grating structures 104, 106, 108 describe a linear grating, the periodic grating structures 104, 106, 108 are arranged so that they form an isosceles triangle (see FIG. 9 ). In other words, in one embodiment, the first periodic grating structure 104 is parallel to the X-axis or Y-axis of the image light guide, and the second and third periodic grating structures 106, 108 are non-parallel to the first periodic grating structure 104. Furthermore, the second and third periodic grating structures 106, 108 may be symmetrical with respect to one another but asymmetrical with respect to the first periodic grating structure 104. That is, the periodic grating structures 104, 105, 108 are not arranged to form an equilateral triangle. Rather, the second set of periodic diffraction structures 106 is offset by more than 60 degrees with respect to the first set of periodic diffraction structures 104, and the third set of periodic diffraction structures 108 is offset by more than −60 degrees with respect to the first set of periodic diffraction structures. The first set of periodic grating structures 104 includes a first period, and the second and third sets of periodic grating structures 106, 108 include a second period. The second period is different from the first period. In one embodiment, the first period includes a period that is smaller than the second period, such that the first set of periodic grating structures 104 is operable to more efficiently diffract image-bearing light in the red wavelength range R (see, for example, FIG. 3D ). In one embodiment, the first period comprises a larger period than the second period, such that the first set of periodic grating structures 104 is operable to more efficiently diffract image-bearing light in the red wavelength range R. In one embodiment, the second and third sets of periodic grating structures 106, 108 are operable to diffract image-bearing light in the blue wavelength range B (see, e.g., FIG. 3D ). For example, compared to the second and third sets of periodic grating structures 106, 108, the first set of periodic grating structures 104 features may be separated by a pitch greater than 50 nm.In one embodiment, the incoupling diffractive optical element IDO has bilateral symmetry across the longitudinal axis 115 of the image light guide 100. By diffracting the image-bearing light of a wavelength "more efficiently," it is meant that a greater amount of the image-bearing light falls into a desired diffraction order. The desired diffraction order may include, but is not limited to, a first diffraction order, a second diffraction order, a reflected diffraction order, or a transmitted diffraction order.
[0030] In one embodiment, the outcoupling diffractive optical element ODO includes a fourth set, a fifth set, and a sixth set of periodic grating structures 110, 112, 114. The fourth set, fifth set, and sixth set of periodic grating structures 110, 112, 114 also lack perfect hexagonal symmetry. The fourth set, fifth set, and sixth set of periodic grating structures 110, 112, 114 are parallel to the first set, second set, and third set of periodic grating structures 104, 106, 108, respectively. The fourth set, fifth set, and sixth set of periodic grating structures 110, 112, 114 form a composite diffractive optical element operable to expand and outcouple image-bearing light from the outcoupling diffractive optical element ODO. In one embodiment, the fifth set of periodic grating structures 112 intersects with the sixth set of periodic grating structures 114. As shown in Figure 3A, in one embodiment, the fourth set of periodic grating structures 110 is parallel to the first set of periodic grating structures 104 of the incoupling diffractive optical element IDO, the fifth set of periodic grating structures 112 is parallel to the second set of periodic grating structures 106 of the incoupling diffractive optical element IDO, and the sixth set of periodic grating structures 114 is parallel to the third set of periodic grating structures 108 of the incoupling diffractive optical element IDO. The fourth, fifth, and sixth sets of periodic grating structures 110, 112, 114 may also have the same periodicity as the first, second, and third sets of periodic grating structures 104, 106, 108, respectively. In one embodiment, the outcoupling diffractive optical element ODO has bilateral symmetry across the longitudinal axis 115 of the image light guide 100.
[0031] The fourth, fifth, and sixth sets of periodic grating structures 110, 112, and 114 of the outcoupling diffractive optical element ODO form fourth, fifth, and sixth grating vectors K4, K5, and K6, respectively. In one embodiment, the grating vector K4 is parallel to the grating vector K1. In one embodiment, the grating vector K5 is offset by 60 degrees (+60°) from the incoupling grating vector K1 and from the X-axis, and the grating vector K6 is offset by -60 degrees (-60°) from the incoupling grating vector K1 and from the X-axis.
[0032] 3D , in one embodiment, the first and fourth sets of periodic grating structures 104, 110 generally have the same grating pitch and are configured to more efficiently diffract an image-bearing light beam in a first wavelength range R (e.g., red light). During operation, at least a portion of an image-bearing light beam in a first wavelength range R that is incident on the first, second, and third sets of periodic grating structures 104, 106, 108 of the incoupling diffractive optical element IDO is diffracted and guided within the image light guide 100 as image-bearing light WG for further propagation within the image light guide 100 by TIR and / or diffractive reflection. To illustrate one or more characteristics of embodiments of the present disclosure, the image light guide 100 is described and illustrated herein particularly with respect to the optical paths of one or more portions of a beam of image-bearing light WI that, upon incidence thereon, are disposed perpendicular to the plane of the incoupling diffractive optical element IDO, unless otherwise noted. However, those skilled in the art will recognize that these descriptions are not limiting and that the image-bearing light WI incident on the incoupling diffractive optical element IDO can be positioned at any angle for which the system is optimized.
[0033] In Figures 3D and 3E, the arrows indicate portions of the optical path of the image-bearing light WIR, WIB, and are intended to illustrate the principles by which the configurations of embodiments of the present disclosure enable incoupling, propagation, expansion, and outcoupling of two or more wavelength ranges of image-bearing light, and the arrows do not represent any scale thereof.
[0034] For example, if the center line of the beam of image-bearing light WI enters the incoupling diffractive optical element IDO perpendicular to the incoupling diffractive optical element IDO, a portion of the image-bearing light WI enters each of the first, second, and third sets of periodic grating structures 104, 106, 108. In this example, a portion of the image-bearing light WIR in the first wavelength range R is directed toward the outcoupling diffractive optical element ODO parallel to the direction of the first grating vector K1. A portion of the image-bearing light beam WGR in the first wavelength range R that enters the fourth set of periodic grating structures 110 is outcoupled as image-bearing light WOR. Another portion of the image-bearing light beam WGR in the first wavelength range R continues along its original propagation direction and enters and is diffracted by the sixth set of periodic grating structures 114, and a portion of the image-bearing light beam WGR is directed generally in the Y-axis direction toward the outer edge of the outcoupling diffractive optical element ODO. A portion of the image-bearing light beam WGR propagating in the Y-axis direction is incident on the fifth set of periodic grating structures 112 and diffracted, with a portion of the image-bearing light beam WGR being directed generally in the X-axis direction. When the portion of the image-bearing light beam WGR re-enters the fourth set of periodic grating structures 110, another portion of the image-bearing light beam WGR is outcoupled as image-bearing light WOR. Those skilled in the art will recognize that Figure 3D is intended to facilitate understanding of the subject matter of the present disclosure and does not depict all examples and / or orders of diffraction of the image-bearing light beam WGR.
[0035] 3E is a schematic diagram illustrating an example of diffraction of blue light B within the image light guide 100. The second, third, fifth, and sixth sets of periodic grating structures 106, 108, 112, 114 generally have the same grating pitch and are configured to more efficiently diffract an image-bearing light beam in the second wavelength range B (e.g., blue light). When the center line of the beam of image-bearing light WI is incident on the incoupling diffractive optical element IDO along a direction perpendicular to the incoupling diffractive optical element IDO, a portion of the image-bearing light WI is incident on each of the first, second, and third sets of periodic grating structures 104, 106, 108. In this example, at least a portion of the image-bearing light beam WIB in the second wavelength range B that is incident on the first, second, and third sets of periodic grating structures 104, 106, 108 of the incoupling diffractive optical element IDO is diffracted and guided into the image light guide 100 as image-bearing light WGB for further propagation within the image light guide 100 by TIR and / or diffractive reflection. The portion of the image-bearing light beam WGB is directed towards the outcoupling diffractive optical element ODO parallel to the directions of the second grating vector K2 and the third grating vector K3.
[0036] For example, a portion of the image-bearing light beam WGB that is directed parallel to the second grating vector K2 and that is incident on the fifth set of periodic grating structures 112 is outcoupled as image-bearing light WOB. Another portion of the image-bearing light beam WGB that is incident on the sixth set of periodic grating structures 114 is diffracted and directed generally along the X-axis. When this portion of the image-bearing light beam WGB then enters the fifth set of periodic grating structures 112, the image-bearing light beam WGB is again diffracted, and a portion of the image-bearing light WGB is directed generally parallel to the sixth grating vector K6. When this portion of the image-bearing light beam WGB then enters the sixth set of periodic grating structures 114, another portion of the image-bearing light WGB is outcoupled as image-bearing light WOB.
[0037] Similarly, a portion of the image-bearing light beam WGB that is directed parallel to the third grating vector K3 and that is incident on the sixth set of periodic grating structures 114 is outcoupled as image-bearing light WOB. The portion of the image-bearing light beam WGB that is incident on the fifth set of periodic grating structures 112 is diffracted and directed generally along the X-axis. When this portion of the image-bearing light beam WGB then enters the sixth set of periodic grating structures 114, the image-bearing light beam WGB is again diffracted, and a portion of the image-bearing light WGB is directed generally parallel to the fifth grating vector K5. When this portion of the image-bearing light beam WGB then enters the fifth set of periodic grating structures 112, another portion of the image-bearing light WGB is outcoupled as image-bearing light WOB. Those skilled in the art will recognize that FIG. 3E does not show all examples and / or orders of diffraction of the image-bearing light beam WGB to facilitate understanding of the subject matter of the present disclosure.
[0038] In conventional beam expanders, light is outcoupled after an odd number of incidences on intermediate (e.g., turning) diffractive features. In the image light guide 100, the image-bearing light WG is outcoupled after an even number of incidences on the intermediate diffractive features. In this configuration, the image-bearing light WG undergoes additional turning (compared to odd-numbered output systems) so that the image-bearing light WG is aligned (e.g., approximately perpendicular) with the set of periodic grating structures. For example, as shown in FIG. 3D , a portion of the image-bearing light beam WGR is incident on the diffractive features of the first set of periodic grating structures 104 within the incoupling diffractive optical element IDO, and a portion of the image-bearing light beam WGR propagating in the original direction parallel to the grating vector K1 is diffracted when incident on the diffractive features of the fourth set of periodic grating structures 110, and the portion of the image-bearing light beam WGR is outcoupled. When a portion of the image-bearing light beam WGR is incident on the diffractive features of the sixth set of periodic grating structures 114, it undergoes a first (odd) intermediate (e.g., turning) diffraction, turning the portion of the image-bearing light beam WGR in the Y-axis direction; when this portion of the image-bearing light beam WGR is incident on the diffractive features of the fifth set of periodic grating structures 112, it undergoes a second (even) intermediate (e.g., turning) diffraction, turning the portion of the image-bearing light beam WGR in the X-axis direction; when this portion of the image-bearing light beam WGR is incident on the diffractive features of the fourth set of periodic grating structures 110, it undergoes further diffraction, and the portion of the image-bearing light beam WGR is outcoupled as image-bearing light WOR. This configuration increases the diffraction efficiency of the image light guide 100. In this configuration, any portion of the image-bearing light beam WGR that is output after an odd number of intermediate (e.g., turning) diffractions is output through a diffractive feature having a pitch designed for the image-bearing light beam WGB, resulting in a significant reduction in the efficiency of that outcoupled diffraction order. As shown in Figure 3E, the optical path of the image-bearing light beam WGB is similarly configured to be outcoupled after an even number of incidences on the intermediate (e.g., turning) diffractive features.
[0039] 3A and 3B, in one embodiment, a portion 116 of the outcoupling diffractive optical element ODO wraps around the incoupling diffractive optical element IDO. In other words, the portion 116 of the outcoupling diffractive optical element ODO extends at least partially around the incoupling diffractive optical element IDO, such that a beam of image-bearing light WG incident on the incoupling diffractive optical element IDO perpendicular to its plane is diffracted along the second and third grating vectors K2 and K3 and incident on the portion 116 of the outcoupling diffractive optical element ODO. As shown in FIGS. 3A and 3B, in one embodiment, the outcoupling diffractive optical element ODO and the incoupling diffractive optical element IDO are laterally separated in the X-axis and Y-axis directions by a space 118. The space 118 may be arc-shaped and does not include any periodic diffractive structure.
[0040] In one embodiment, the depths of the periodic grating structures 106, 108, 110, 112 in the incoupling diffractive optical element IDO and the outcoupling diffractive optical element ODO are the same. In another embodiment, the depths of the periodic grating structures 104, 106, 108, 110, 112 are varied to increase the efficiency of selected diffraction orders. For example, the periodic grating structures 106, 108 may have a greater depth than the periodic grating structures 104, 110, 112.
[0041] 3B , in one embodiment, the fourth set of periodic grating structures 110 have a shallower depth than the fifth and sixth sets of periodic grating structures 112, 114, which include the outcoupling diffractive optical element ODO. For diffractive optical elements that include a diffraction grating, increasing the grating depth improves diffraction efficiency. This configuration reduces the protrusion of the fourth set of periodic grating structures 110, reducing the image-bearing light WG outcoupled therefrom and increasing the light distribution in the Y-axis direction toward the outer edge of the outcoupling diffractive optical element ODO.
[0042] 3C , in one embodiment, the fourth set of periodic grating structures 110 is not present in the outcoupling diffractive optical element ODO. In a diffractive optical element that includes a compound grating pattern (e.g., two intersecting gratings), the third grating vector is implicitly defined by the grating pattern. This configuration reduces, but does not eliminate, the image-bearing light WG that is outcoupled from the implicit grating structure. This increases the light distribution in the Y-axis direction toward the outer edge of the outcoupling diffractive optical element ODO.
[0043] 4A and 4B, in one embodiment, the image light guide 100 includes an intermediate diffractive optical element TDO formed on / in a first surface 102 of the image light guide 100. Alternatively, the intermediate diffractive optical element TDO may be formed on / in a second surface of the image light guide 100 opposite the first surface 102. The intermediate diffractive optical element TDO is located in the path of the image-bearing light between the incoupling diffractive optical element IDO and the outcoupling diffractive optical element ODO. The intermediate diffractive optical element TDO and the incoupling diffractive optical element IDO are separated laterally in the X-axis and Y-axis directions by a space 118. A portion 116′ of the intermediate diffractive optical element TDO wraps around the incoupling diffractive optical element IDO. In other words, portion 116' of the intermediate diffractive optical element TDO extends, at least partially, around the incoupling diffractive optical element IDO, so that portions of the image-bearing light WG directed parallel to the second and third grating vectors K2, K3 are incident on portion 116' of the intermediate diffractive optical element TDO.
[0044] 4A and 4B , the intermediate diffractive optical element TDO and the outcoupling diffractive optical element ODO are laterally separated in the X-axis direction by a second space 120. The intermediate diffractive optical element TDO includes seventh, eighth, and ninth sets of periodic grating structures 122, 124, 126. In one embodiment, the seventh, eighth, and ninth sets of periodic grating structures 122, 124, 126 have the same orientation, periodicity, and symmetry as the fourth, fifth, and sixth sets of periodic grating structures 110, 112, 114, respectively, of the outcoupling diffractive optical element ODO. In one embodiment, the seventh, eighth and ninth grating vectors K7, K8, K9 of the seventh, eighth and ninth sets of periodic grating structures 122, 124, 126 are equal in magnitude and direction to the grating vectors K4, K5, K6, respectively. The intermediate diffractive optical element TDO allows for greater freedom in positioning the outcoupling diffractive optical element ODO.
[0045] 4B , in one embodiment, the fourth set of periodic grating structures 110 has a shallower depth than the fifth and sixth sets of periodic grating structures 112, 114, which include the outcoupling diffractive optical element ODO. As illustrated in FIG. 3B , this configuration reduces the protrusion of the fourth set of periodic grating structures 110, reducing the image-bearing light WG outcoupled therefrom and increasing the light distribution in the Y-axis direction toward the outer edges of the outcoupling diffractive optical element ODO. Similarly, the seventh set of periodic grating structures 122 has a smaller depth than the eighth and ninth sets of periodic grating structures 124, 126, which include the intermediate diffractive optical element TDO.
[0046] 4C, in one embodiment, the fourth set of periodic grating structures 110 are not present in the outcoupling diffractive optical element ODO. As described in FIG. 3B, this configuration reduces, but does not eliminate, the image-bearing light WG that is outcoupled from the implicit grating structure. This increases the light distribution in the Y-axis direction toward the outer edge of the outcoupling diffractive optical element ODO. Similarly, the seventh set of periodic grating structures 122 are not present in the intermediate diffractive optical element TDO.
[0047] As shown in FIGS. 5A and 5B , in one embodiment, the image light guide 200 may have an incoupling diffractive optical element IDO and an outcoupling diffractive optical element ODO formed on / in the first surface 202 of the image light guide 200. The incoupling diffractive optical element IDO and the outcoupling diffractive optical element ODO may be configured as a single continuous diffractive pattern. The incoupling diffractive optical element IDO and the outcoupling diffractive optical element ODO are formed with periodicity and orientation, as described in the embodiment shown in FIGS. 3A and 3B . In one embodiment, the depth of the periodic grating structures 206, 208 including the incoupling diffractive optical element IDO is greater than the depth of the periodic grating structure including the outcoupling diffractive optical element ODO. For diffractive optical elements including diffraction gratings, increasing the grating depth improves diffraction efficiency.
[0048] 5B, in one embodiment, the fourth set of periodic grating structures 210 have a shallower depth than the fifth and sixth sets of periodic grating structures 212, 214, which include the outcoupling diffractive optical element ODO. As described in FIG. 3B, this configuration reduces the protrusion of the fourth set of periodic grating structures 210, reduces the image-bearing light WG outcoupled therefrom, and increases the light distribution in the Y-axis direction towards the outer edge of the outcoupling diffractive optical element ODO.
[0049] 5C, in one embodiment, the fourth set of periodic grating structures 210 are not present in the outcoupling diffractive optical element ODO. As described in FIG. 3B, this configuration reduces, but does not eliminate, the image-bearing light WG that is outcoupled from the implicit grating structure. This increases the light distribution in the Y-axis direction towards the outer edge of the outcoupling diffractive optical element ODO.
[0050] In embodiments of the present disclosure, the periodic structures may be, but are not limited to, linear diffractive features, circular posts, or elliptical posts. For example, FIG. 6 shows a composite diffraction pattern 300 having diffractive features including circular posts 302. The composite diffraction pattern 300 is defined by a plurality of hexagonal unit cells 310 positioned in a two-dimensional lattice. The incoupling diffractive optical element IDO and the outcoupling diffractive optical element ODO of the image light guides 100, 200 (see FIGS. 4 and 5) may be similarly configured as two-dimensional lattices of hexagonal unit cells.
[0051] As shown in FIG. 7 , in one embodiment, the stacked image light guide assembly 400 includes a first image light guide 402 coupled with a second image light guide 404 to form a multi-color image light guide assembly. The first image light guide 402 may be one of the image light guides 100, 200 described above. The image light guides 402, 404 are formed on separate, mechanically coupled substrates S1, S2. In one embodiment, the image light guides 402, 404 are coupled via an adhesive. In some embodiments, the image light guide 402 is mechanically coupled to the image light guide 404 by partial contact in a manner that does not significantly change the TIR properties of either of the image light guides 402, 404. Furthermore, in some embodiments, the stacked image light guides 402, 404 include a partial or complete air gap or space between the substrates S1, S2. In one embodiment, the stacked image light guide assembly 400 provides three distinct color light paths, which may be referred to herein as channels. 7, the first image light guide 402 has a red light path CR for red light (e.g., in the range of 630-660 NM) and a blue light path CB for blue light B (e.g., in the range of 440-470 NM). The second image light guide 404 has a green light path CG for green light G (e.g., in the range of 560-520 NM).
[0052] Green light G from the projector 18 entering the stacked image light guide assembly 400 is transmitted through the incoupling diffractive optical element IDO1 of the first image light guide 402 and diffracted by the incoupling diffractive optical element IDO2 of the second image light guide 404. The diffracted green light G is then transmitted through the second image light guide substrate S2 via TIR and directed to the outcoupling diffractive optical element ODO2 of the second image light guide 404. Red light R from the projector 16 entering the stacked image light guide assembly 400 is diffracted by the incoupling diffractive optical element IDO1 of the first image light guide 402. The diffracted red light R is then transmitted through the first image light guide substrate S1 via TIR and directed to the outcoupling diffractive optical element ODO1 of the first image light guide 402. Blue light B from the projector 18 entering the stacked image light guide assembly 400 is diffracted by the incoupling diffractive optical element IDO1 of the first image light guide 402. The diffracted blue light B is then transmitted through the first image light guide substrate S1 via TIR and directed to the outcoupling diffractive optical element ODO1 of the first image light guide 402.
[0053] The perspective view of FIG. 8 illustrates a display system 60 for augmented reality viewing using one or more image light guides of the present disclosure. Display system 60 is shown as an HMD with a right-eye optical system 64R having a right-eye image light guide 66R. Display system 60 includes an image source 68, such as a picoprojector or similar device, and is energizable to generate images. In one embodiment, display system 60 includes one or more image light guides and a left-eye optical system including a second image source. The generated images can be a stereoscopic pair of images for 3D viewing. The virtual image formed by display system 60 can appear superimposed or overlaid on real-world scene content viewed by the viewer through image light guide 66R. Additional components, known to those skilled in the art of augmented reality visualization, such as one or more cameras attached to the frame of the HMD for viewing scene content or for viewer eye tracking, can also be provided.
[0054] 10 , in one embodiment, the image light guide 500 may include an incoupling diffractive optical element IDO, an intermediate diffractive optical element TDO, and an outcoupling diffractive optical element ODO formed along a first surface 502 of the image light guide 500. Alternatively, one or more of the incoupling, intermediate, and outcoupling diffractive optical elements IDO, TDO, and ODO may be formed along a second surface of the image light guide 500 opposite the first surface 502. In one embodiment, the incoupling diffractive optical element IDO includes a composite pattern of a periodic grating structure 504 having a first grating vector K0 and a second grating vector K1 oriented at an angle relative to the first grating vector K0. For example, the incoupling diffractive optical element IDO may include multiple posts or rows of wavy (e.g., sinusoidal) diffractive elements that maximize the two grating vectors K0 and K1.
[0055] In one embodiment, the incoupling diffractive optical element IDO is configured to direct a portion of the image-bearing light WGR in the first wavelength range R to the intermediate diffractive optical element TDO having a third grating vector K2, which is oriented to diffract a portion of the image-bearing light WGR in a reflective mode toward the outcoupling diffractive optical element ODO (see FIG. 3D ). Only a portion of the image-bearing light WGR is diffracted by each of multiple encounters with the intermediate diffractive optical element TDO, thereby laterally expanding each of the angle-related beams of the image-bearing light WGR that approach the outcoupling diffractive optical element ODO. In one embodiment, the intermediate diffractive optical element TDO includes a pattern of linear grating elements 506.
[0056] In one embodiment, the outcoupling diffractive optical element ODO includes a composite pattern of periodic grating structures 508 having a fourth grating vector K3 and a fifth grating vector K4. For example, the outcoupling diffractive optical element ODO may include multiple rows of wavy (e.g., sinusoidal) diffractive elements. The incoupling diffractive optical element IDO is configured to direct a portion of the second wavelength range B of the image-bearing light WGR to the outcoupling diffractive optical element ODO having fourth and fifth grating vectors K3, K4, which is oriented to diffract the portion of the image-bearing light WGR in a reflective mode to provide pupil dilation and outcouple the portion of the image-bearing light WGR to the eyebox.
[0057] In the first optical path, the image-bearing light WGB is most efficiently diffracted by the periodic grating structure 504 of the incoupling diffractive optical element IDO having the second grating vector K1, the linear grating element 506 of the intermediate diffractive optical element TDO having the third grating vector K2, and the portion of the composite grating pattern element 508 of the outcoupling diffractive optical element ODO having the fifth grating vector K4. The second, third, and fifth grating vectors K1, K2, K4 generate a vector sum of substantially zero magnitude. In the second optical path, the image-bearing light WGB is most efficiently diffracted by the periodic grating structure 504 of the incoupling diffractive optical element IDO having the first grating vector K0, the composite grating pattern element 508 of the outcoupling diffractive optical element ODO having the fourth grating vector K3, and the portion of the composite grating pattern element 508 of the outcoupling diffractive optical element ODO having the fifth grating vector K4. The first, fourth, and fifth lattice vectors, K0, K3, K4, form a vector sum of substantially zero magnitude.
[0058] One or more features of the embodiments described herein may be combined to create additional embodiments not shown. While various embodiments have been described in detail above, it should be understood that they are presented for illustrative purposes, and not for limiting purposes. It will be apparent to those skilled in the relevant art that the subject matter of the present disclosure may be embodied in other specific forms, variations, and modifications without departing from the scope, spirit, or essential characteristics thereof. The above-described embodiments are therefore to be considered in all respects as illustrative and not restrictive. The scope of the invention is indicated by the appended claims, and all changes that come within the meaning and range of equivalents thereof are intended to be embraced therein.
Claims
1. 1. An image light guide for conveying a virtual image, comprising: a substrate operable to propagate an image-bearing light beam of a first wavelength range and of a second wavelength range; an incoupling diffractive optical element formed along the substrate, the incoupling diffractive optical element operable to diffract the image-bearing light beam of the first wavelength range and of the second wavelength range into the substrate in an angle-encoded manner; an outcoupling diffractive optical element formed along the substrate, the outcoupling diffractive optical element operable to expand the image-bearing light beams of the first wavelength range and the second wavelength range and output the expanded image-bearing light beams of the first wavelength range and the second wavelength range from the substrate in an angularly decoded form; the incoupling diffractive optical element includes a first, a second, and a third plurality of periodic incoupling diffractive structures, the first plurality of periodic incoupling diffractive structures being parallel to an axis, and the second and third plurality of periodic incoupling diffractive structures being non-parallel to the axis, respectively; the outcoupling diffractive optical element includes a first, a second, and a third plurality of periodic outcoupling diffractive structures, the second and the third plurality of periodic outcoupling diffractive structures having a periodicity substantially equal to a periodicity of the second and the third plurality of periodic incoupling diffractive structures; an image light guide for conveying a virtual image, wherein the second and third plurality of periodic outcoupling diffractive structures are substantially parallel to the second and third plurality of periodic incoupling diffractive structures;
2. 2. The image light guide for conveying a virtual image of claim 1, wherein the first plurality of periodic outcoupling diffractive structures are implicitly defined by the second and third periodic outcoupling diffractive structures.
3. 10. The image light guide for conveying a virtual image of claim 1, wherein the first plurality of periodic incoupling diffractive structures and the first plurality of periodic outcoupling diffractive structures are configured to diffract image-bearing light in a first wavelength range more efficiently than in a second wavelength range.
4. 4. An image light guide for conveying a virtual image as described in claim 3, wherein at least one of the second and third pluralities of periodic incoupling diffractive structures and a corresponding one of the second and third pluralities of periodic outcoupling diffractive structures are configured to diffract image-bearing light in the second wavelength range more efficiently than in the first wavelength range.
5. 4. The image light guide for conveying a virtual image of claim 3, wherein the first wavelength range is red.
6. 4. The image light guide for conveying a virtual image of claim 3, wherein the second wavelength range is blue.
7. 2. The image light guide for conveying a virtual image of claim 1, wherein the first, the second, and the third plurality of periodic incoupling diffractive structures are bilaterally symmetric along a longitudinal axis of the image light guide.
8. 2. The image light guide for conveying a virtual image of claim 1, wherein the first plurality of periodic incoupling diffractive structures are oriented to diffract a portion of the image-bearing light toward a central region of the outcoupling diffractive optical element, the second plurality of periodic incoupling diffractive structures are offset by more than 60 degrees relative to the first plurality of periodic incoupling diffractive structures, and the third plurality of periodic incoupling diffractive structures are offset by more than −60 degrees relative to the first plurality of periodic incoupling diffractive structures.
9. 2. The image light guide for conveying a virtual image of claim 1, wherein the second and third plurality of periodic incoupling diffractive structures are separated by a period of greater than 50 nm relative to the first plurality of periodic incoupling diffractive structures.
10. 2. The image light guide for conveying a virtual image of claim 1, wherein one of the first, second, and third plurality of periodic incoupling diffractive structures includes a first period, and each of the others of the first, second, and third plurality of periodic incoupling diffractive structures includes a second period that is different from the first period, and the first period is operable to diffract image-bearing light in a first wavelength range more efficiently than in a second wavelength range.
11. 11. The image light guide for conveying a virtual image of claim 10, wherein the first period is smaller than the second period and is operable to diffract image-bearing light in the first wavelength range more efficiently than in the second wavelength range.
12. 11. The image light guide for conveying a virtual image of claim 10, wherein the first period is greater than the second period and is operable to diffract image-bearing light in the first wavelength range more efficiently than in the second wavelength range.
13. 2. The image light guide for transmitting a virtual image of claim 1, wherein a portion of the outcoupling diffractive optical element is located at least partially around the incoupling diffractive optical element, an arc-shaped space is located between the incoupling diffractive optical element and the outcoupling diffractive optical element, and the arc-shaped space does not include any periodic diffractive structure.
14. 2. The image light guide for transmitting a virtual image of claim 1, further comprising an intermediate diffractive optical element located in an optical path between the incoupling diffractive optical element and the outcoupling diffractive optical element, wherein the intermediate diffractive optical element includes two plurality of periodic diffractive structures parallel to the second and third plurality of periodic incoupling diffractive structures, a portion of the intermediate diffractive optical element is located at least partially around the incoupling diffractive optical element, and an arc-shaped space is located between the incoupling diffractive optical element and the outcoupling diffractive optical element, and the arc-shaped space does not include any periodic diffractive structures.
15. 15. The image light guide for conveying a virtual image of claim 14, wherein a second space is located between the intermediate diffractive optical element and the outcoupling diffractive optical element, and the second space does not include any periodic diffractive structure.
16. 10. The image light guide for conveying a virtual image of claim 1, wherein the incoupling diffractive optical element is operable to diffract a portion of the image-bearing light beam into the substrate within a range of angles of incidence.
17. 2. The image light guide for conveying a virtual image of claim 1, wherein the image light guide includes an optical path whereby image-bearing light in the first wavelength range is incident on the incoupling diffractive optical element at an incident angle range, a first portion of the image-bearing light in the first wavelength range propagating within the substrate is incident on and outcoupled by the first plurality of periodic outcoupling diffractive structures, and a second portion of the image-bearing light in the first wavelength range further propagates and is incident on either or both of the second and third plurality of periodic outcoupling diffractive structures.
18. 18. The image light guide for conveying a virtual image of claim 17, wherein the incident angle range is between 0 degrees and about 60 degrees from a surface normal of the image light guide.
19. 18. The image light guide for conveying a virtual image of claim 17, wherein the second portion of the image-bearing light in the first wavelength range is outcoupled after an even number of incidences of the image-bearing light in the first wavelength range on the first, the second, or the third plurality of periodic outcoupling diffractive structures.
20. 2. The image light guide for conveying a virtual image of claim 1, wherein the image light guide includes an optical path whereby the image-bearing light of the second wavelength range is operable to propagate within the substrate, and the optical path further includes the second and third plurality of periodic incoupling diffractive structures, the second plurality of periodic outcoupling diffractive structures, and a third plurality of periodic outcoupling diffractive structures.
21. 21. The image light guide for conveying a virtual image of claim 20, wherein a portion of the image-bearing light in the second wavelength range is outcoupled after an even number of incidences of the image-bearing light in the second wavelength range onto the second and third plurality of periodic outcoupling diffractive structures.
22. 1. An image light guide for conveying a virtual image, comprising: a substrate operable to propagate an image-bearing light beam of a first wavelength range and of a second wavelength range; an incoupling diffractive optical element formed along the substrate, the incoupling diffractive optical element operable to diffract the image-bearing light beams of the first wavelength range and of the second wavelength range from an image source into the substrate in an angle-encoded manner; an outcoupling diffractive optical element formed along the substrate, the outcoupling diffractive optical element operable to expand the image-bearing light beams of the first wavelength range and of the second wavelength range and to output the expanded image-bearing light beams of the first wavelength range and of the second wavelength range from the substrate in an angularly decoded form; an image light guide, wherein the incoupling diffractive optical element and the outcoupling diffractive optical element are configured as a single continuous diffractive pattern having a first plurality of periodic diffractive structures and a second plurality of periodic diffractive structures positioned at an angle of less than 60 degrees relative to the first plurality of periodic diffractive structures.
23. 23. The image light guide for conveying a virtual image of claim 22, wherein the first and second plurality of periodic diffractive structures of the incoupling diffractive optical element have a greater depth than the first and second periodic diffractive structures of the outcoupling diffractive optical element.
24. 10. The image light guide for conveying a virtual image of claim 1, wherein the substrate is a first substrate of a stacked image light guide assembly, a second substrate operable to propagate an image-bearing light beam along its length is coupled to the first substrate, and the first and second substrates include three or more optical paths for at least three wavelength ranges.
25. 1. An image light guide for conveying a virtual image, comprising: a substrate operable to propagate an image-bearing light beam of a first wavelength range and of a second wavelength range; an incoupling diffractive optical element formed along the substrate, the incoupling diffractive optical element operable to diffract the image-bearing light beams of the first wavelength range and of the second wavelength range from an image source into the substrate in an angle-encoded manner; an outcoupling diffractive optical element formed along the substrate, the outcoupling diffractive optical element operable to expand the image-bearing light beams of the first wavelength range and of the second wavelength range and to output the expanded image-bearing light beams of the first wavelength range and of the second wavelength range from the substrate in an angularly decoded form; and an intermediate diffractive optical element formed along the substrate, the intermediate diffractive optical element operable to expand the image-bearing light beam of the second wavelength range and output the expanded image-bearing light beam of the second wavelength range to the outcoupling diffractive optical element; the incoupling diffractive optical element includes a periodic diffractive structure having a first grating vector and a second grating vector, the periodic diffractive structure having the first grating vector configured to direct the image-bearing light beam of the first wavelength range from the incoupling diffractive optical element to the outcoupling diffractive optical element; the intermediate diffractive optical element includes a periodic diffractive structure having a third grating vector; An image light guide for conveying a virtual image, wherein the outcoupling diffractive optical element includes a periodic diffractive structure having fourth, fifth, and sixth grating vectors.
26. An image light guide for transmitting a virtual image as described in Claim 25, wherein the image-bearing light beam of the first wavelength range diffracted at a first diffraction order is propagated directly from the incoupling diffractive optical element to the outcoupling diffractive optical element.
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