Optical system for two-dimensional magnification of images with glint and ghost reduction from a waveguide

The optical system for near-eye displays optimizes image illumination using a concave polygon design with strategically arranged reflective surfaces and a coupling input prism to enhance efficiency and reduce reflections, achieving a compact design with a wide field of view.

JP7787593B2Active Publication Date: 2025-12-17LUMUS LTD
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Patent Information

Application Number
JP2023511682
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-09-11
Filing Date
2021-08-23
Publication Date
2025-12-17
Estimated Expiration
2041-08-23

AI Technical Summary

Technical Problem

Existing optical systems for near-eye displays face challenges in efficiently directing image illumination to provide a wide field of view while minimizing component size and reducing unwanted reflections such as glints and ghosts.

Method used

The optical system employs a light-directing optical element (LOE) with strategically arranged partially reflective surfaces and a coupling input prism to optimize image illumination propagation, using a concave polygon design to minimize unnecessary reflections and reduce component size.

Benefits of technology

This approach enhances the efficiency of image illumination delivery, reducing unwanted reflections and allowing for a compact design with a wider field of view.

✦ Generated by Eureka AI based on patent content.

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Abstract

The optical system employs a waveguide, the waveguide including a first set of partially reflective surfaces ("facets") for continuously redirecting image illumination propagating from a coupling input region toward a second region, and a second set of facets within the second region for continuously coupling out the redirected image illumination toward the observer's eye. The first set of facets includes at least a first facet adjacent to the coupling input region, a third facet from the coupling input region, and a second facet located at an intermediate plane between the first and third facets. The second facet is located within a sub-region of the intermediate plane such that image illumination propagating from the coupling input region to the third facet passes through the intermediate plane without passing through the second facet.
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Description

[Technical Field]

[0001] FIELD AND BACKGROUND OF THE INVENTION The present invention relates to optical systems, and more particularly to optical systems for two-dimensional magnification of images for display to a user from an image projector.

[0002] 1A shows a near-eye display optical engine that includes an image projector 200 that projects image light having a field of view through a transmission coupling prism 202T and through a vertical aperture 203V into a waveguide 204. The light propagates through the waveguide with total internal reflection. A partial reflector 206 embedded in the waveguide reflects the image from the waveguide (dashed arrow) toward a viewer with the center 208 of the eyeball.

[0003] FIG. 1B shows another method of coupling into a waveguide by using a reflective coupling prism 202R with a mirror on its back surface.

[0004] FIG. 1C shows a schematic front view of a 2D aperture-enlarged waveguide. Here, image projector 200 introduces an image into waveguide 204 via coupling prism 202 and horizontal aperture 203L (203V is also present but not visible from this orientation). Image ray 220A propagates horizontally within the waveguide, reflecting due to TIR between the waveguide faces. Two sets of facets are used here: set 206L expands the aperture horizontally by successively reflecting the guided image into different guidance directions 220B, while facet 206V expands the aperture vertically by successively coupling the image from area 210 on the waveguide to the observer's eye. Summary of the Invention

[0005] The present invention is an optical system for directing image illumination introduced into a combined input area to an eye motion box for viewing by a user.

[0006] In accordance with the teachings of one embodiment of the present invention, an optical system is provided for directing image illumination introduced into a coupling input region to an eye motion box for viewing by a user's eye. The optical system includes a light-directing optical element (LOE) formed from a transparent material. The LOE includes: (a) a first region having a first orientation and including a first set of planar, mutually parallel partially reflective surfaces; (b) a second region having a second orientation non-parallel to the first orientation and including a second set of planar, mutually parallel partially reflective surfaces; and (c) a set of mutually parallel outer major surfaces extending across the first and second regions such that both the first set of partially reflective surfaces and the second set of partially reflective surfaces are located between the outer major surfaces. The second set of partially reflective surfaces is at an oblique angle to the major outer surface such that a portion of image illumination propagating within the LOE by internal reflection at the major outer surface from the first region into the second region is coupled from the LOE toward the eye-motion box, and the first set of partially reflective surfaces is oriented such that a portion of image illumination propagating within the LOE by internal reflection at the major outer surface from the coupling input region is deflected toward the second region. The first set of partially reflective surfaces includes a first partially reflective surface proximal to the coupling input region to contribute to a first portion of the user's field of view as viewed at the eye-motion box, a third partially reflective surface distal to the coupling input region to contribute to a third portion of the user's field of view as viewed at the eye-motion box, and a second partially reflective surface positioned intermediate the first and third partially reflective surfaces to contribute to a second portion of the user's field of view as viewed at the eye-motion box. A second partially reflective surface is disposed in a sub-region of the intermediate surface such that image illumination that propagates from the combined input region to the third partially reflective surface and contributes to a third portion of the user's field of view when viewed through the eye motion box passes through the intermediate surface without passing through the second partially reflective surface.

[0007] According to a further feature of an embodiment of the present invention, the coupling input region includes a coupling input prism having a first plane contiguous with one of the major outer surfaces in the first region, the coupling input prism having a thickness dimension measured perpendicular to the major outer surface that is greater than a thickness of the LOE.

[0008] According to a further feature of an embodiment of the invention, the coupling input prism presents a coupling input surface and a transition line between the coupling input prism as an LOE, the coupling input surface defining an optical aperture of the coupling input prism in a dimension parallel to the outer major surface, and the transition line defining an optical aperture of the coupling input prism in a dimension perpendicular to the outer major surface.

[0009] According to a further feature of an embodiment of the invention, the first set of partially reflective surfaces further comprises at least one partially reflective surface located within the volume of the coupling input prism.

[0010] In accordance with the teachings of one embodiment of the present invention, an optical system is also provided for directing image illumination introduced into the coupling input region to an eye motion box for viewing by a user's eye. The optical system includes a light-directing optical element (LOE) formed from a transparent material. The LOE includes: (a) a first region having a first orientation and including a first set of planar, mutually parallel partially reflective surfaces; (b) a second region having a second orientation non-parallel to the first orientation and including a second set of planar, mutually parallel partially reflective surfaces; and (c) a set of mutually parallel outer major surfaces extending across the first and second regions such that both the first set of partially reflective surfaces and the second set of partially reflective surfaces are located between the outer major surfaces. The second set of partially reflective surfaces is at an oblique angle to the outer major surfaces such that a portion of the image illumination propagating within the LOE by internal reflection at the outer major surfaces from the first region into the second region is coupled from the LOE toward the eye motion box, and the first set of partially reflective surfaces is oriented such that a portion of the image illumination propagating within the LOE by internal reflection at the outer major surfaces from the coupling input region is deflected toward the second region. The coupling input region includes a coupling input prism having a first plane contiguous with one of the outer major surfaces in the first region. The coupling input prism has a thickness dimension, measured perpendicular to the outer major surfaces, that is greater than a thickness of the LOE. The coupling input prism presents a coupling input surface and a transition line between the coupling input prism as the LOE. The coupling input surface defines an optical aperture of the coupling input prism in a dimension parallel to the outer major surfaces, and the transition line defines an optical aperture of the coupling input prism in a dimension perpendicular to the outer major surfaces.

[0011] According to a further feature of an embodiment of the invention, the first set of partially reflective surfaces further comprises at least one partially reflective surface located within the volume of the coupling input prism.

[0012] In accordance with the teachings of embodiments of the present invention, an optical system for directing image illumination introduced into the coupling input region to an eye motion box for viewing by a user's eye is also provided. The optical system includes a light-directing optical element (LOE) formed from a transparent material. The LOE includes: (a) a first region having a first orientation and including a first set of planar, mutually parallel partially reflective surfaces; (b) a second region having a second orientation non-parallel to the first orientation and including a second set of planar, mutually parallel partially reflective surfaces; and (c) a set of mutually parallel outer major surfaces extending across the first and second regions such that both the first set of partially reflective surfaces and the second set of partially reflective surfaces are located between the outer major surfaces. The second set of partially reflective surfaces is at an oblique angle to the outer major surfaces such that a portion of the image illumination propagating within the LOE by internal reflection at the outer major surfaces from the first region into the second region is coupled from the LOE toward the eye motion box, and the first set of partially reflective surfaces is oriented such that a portion of the image illumination propagating within the LOE by internal reflection at the outer major surfaces from the coupling input region is deflected toward the second region. The coupling input region comprises a coupling input prism having a first plane contiguous with one of the outer major surfaces in the first region, the coupling input prism having a thickness dimension, measured perpendicular to the outer major surfaces, that is greater than a thickness of the LOE. The first set of partially reflective surfaces further comprises at least one partially reflective surface located within a volume of the coupling input prism.

[0013] According to a further feature of an embodiment of the invention, the coupling input prism presents a coupling input surface and a transition line between the coupling input prism as an LOE, the coupling input surface defining an optical aperture of the coupling input prism in a dimension parallel to the outer major surface, and the transition line defining an optical aperture of the coupling input prism in a dimension perpendicular to the outer major surface.

[0014] According to a further feature of an embodiment of the present invention, the coupling input prism is bonded to the LOE at an edge surface of the LOE, or alternatively, the coupling input prism is bonded to one of the outer major surfaces of the LOE. [Brief explanation of the drawings]

[0015] The invention is herein described, by way of example only, with reference to the accompanying drawings.

[0016] [Figure 1A] FIG. 1 is a schematic side view of a conventional near-eye waveguide-based display showing two geometries for coupling image illumination into the waveguide (described above). [Figure 1B] FIG. 1 is a schematic side view of a conventional near-eye waveguide-based display showing two geometries for coupling image illumination into the waveguide (described above). [Figure 1C] FIG. 1 is a front view of a conventional near-eye waveguide-based display illustrating the use of first and second sets of partially reflective internal surfaces to expand the optical aperture of the image projector in two dimensions (described above). [Figure 1D] FIG. 1D is a schematic isometric view of a waveguide similar to that of FIG. 1C and corresponding to FIG. 5A of published patent application WO 2020 / 049542 A1. [Figure 2A] 1A-1C are isometric, top, and side views, respectively, of angular representations of image propagation through an optical system in accordance with the teachings of the present invention. [Figure 2B] 1A-1C are isometric, top, and side views, respectively, of angular representations of image propagation through an optical system in accordance with the teachings of the present invention. [Figure 2C] 1A-1C are isometric, top, and side views, respectively, of angular representations of image propagation through an optical system in accordance with the teachings of the present invention. [Figure 3A] FIG. 1 is a schematic front view of a light-directing optical element (LOE or waveguide) constructed and operative in accordance with the teachings of one aspect of the present invention, illustrating the propagation of image illumination from a coupling input region to a first set of partially reflective surfaces (facets), and from the first set of facets to a second set of facets. [Figure 3B]FIG. 3B is a diagram similar to FIG. 3A showing the theoretical locus of facet positions required to provide a field of view (FOV) for a single viewpoint. [Figure 3C] FIG. 3C is a diagram similar to FIG. 3B showing the trajectory of a corresponding set of facet positions to provide an FOV across an "eye motion box" (EMB) of allowable observation positions. [Figure 3D] FIG. 3D is a view similar to FIG. 3A showing the facet positions and dimensions required to trace the trajectory shown in FIG. 3C. [Figure 3E] 3D is a view similar to FIG. 3C, but with the locus further increased according to the geometric requirements resulting from using the first set of obliquely angled facets. [Figure 3F] 3E is a schematic representation of the LOE of FIG. 3D, in which the facet-containing regions are bounded by corresponding polygons and the first set of facets are bounded by concave polygons. [Figure 3G] FIG. 3F is a view similar to FIG. 3F, in which a concave polygon comprising a first set of facets is subdivided into multiple non-concave blocks or slices. [Figure 3H] FIG. 3C is a schematic isometric view showing how such blocks can be assembled to produce the structure of FIG. 3G for successive slicing to form multiple LOEs. [Figure 4A-B] 4C is a diagram similar to FIG. 3A showing exemplary dimensions of an implementation that produces a rectangular field of view with angular dimensions as shown in FIG. 4B. [Figure 4C-D] 4E is a diagram similar to FIG. 3A showing exemplary dimensions of an implementation that produces a trapezoidal field of view with angular dimensions as shown in FIG. 4D. [Figure 5A] FIG. 4B is a diagram similar to FIG. 4A showing an image projector and a combining input prism for introducing image illumination into the LOE. [Figure 5B] FIG. 5B is a schematic isometric view of the coupling input prism of FIG. 5A. [Figure 5C] FIG. 5B is a side view of the coupling input prism of FIG. 5A showing the dimensions required for an exemplary implementation of the present invention. [Figure 5D]10 illustrates a variation of an implementation of the present invention employing a coupling input prism attached to a major outer surface of the LOE. [Figure 6A] FIG. 5B is a schematic front view similar to FIG. 5A, showing the use of an integrated laser scanning image projector integrated with a coupling input prism. [Figure 6B] 6B is a schematic side view of an integrated laser scanning image projector integrated with the combining input prism of FIG. 6A. [Figure 7A] 1 is a schematic side view of a coupling input arrangement employing a tilted reflector coupling arrangement and a coupling input prism, and employing an external collimating optic. [Figure 7B] 7B is a view similar to FIG. 7A, in which the tilted reflector coupling arrangement and the coupling input prism are combined and reduced in size. [Figure 7C] FIG. 7B is a view similar to FIG. 7A employing a polarizing beam splitter and integrating reflective collimating optics into the reflective coupling input arrangement. [Figure 7D] FIG. 7C is similar to FIG. 7C, but using external collimating optics. [Figure 8A] FIG. 5B is similar to FIG. 5A, but in which the coupling input prism is integrated with a portion of the waveguide. [Figure 8B] FIG. 8B is a schematic isometric view of the coupling input prism of FIG. 8A. [Figure 9A] 8B is a schematic side view of the coupling input prism of FIG. 8A implemented as a coupling input prism bonded to the LOE at an edge surface of the LOE. [Figure 9B] 9B is a schematic isometric view of the coupling input prism of FIG. 9A, showing the inclusion of fully or partially reflective facets within the prism, respectively. [Figure 9C] 9B is a schematic isometric view of the coupling input prism of FIG. 9A, showing the inclusion of fully or partially reflective facets within the prism, respectively. [Figure 9D] 8B is a schematic side view of the coupling input prism of FIG. 8A implemented as a coupling input prism cemented to one of the outer major surfaces of the LOE. FIG. [Figure 9E]9D, 9E, and 9F are schematic isometric views of the coupling input prism of FIG. 9D, respectively, showing the inclusion of fully or partially reflective facets within the prism. [Figure 9F] 9D, 9E, and 9F are schematic isometric views of the coupling input prism of FIG. 9D, respectively, showing the inclusion of fully or partially reflective facets within the prism. [Figure 10A] 2D is a side view of an angular representation similar to FIG. 2C, showing two particular points within the field of view of the projected image. [Figure 10B] 10B is a partial view similar to FIG. 4A, showing the image light propagation paths corresponding to two points in FIG. 10A. [Figure 10C] 10 is a side view of the coupling input prism showing the introduction angles of these two field points and the corresponding desired positions on the first reflecting facet where they should meet. FIG. [Figure 10D] 10 is a side view of the coupling input prism showing the introduction angles of these two field points and the corresponding desired positions on the first reflecting facet where they should meet. FIG. [Figure 11A] 7A, 7C, and 7D, respectively, showing implementations of these geometries with partially reflecting facets in a combining prism. [Figure 11B] 7A, 7C, and 7D, respectively, showing implementations of these geometries with partially reflecting facets in a combining prism. [Figure 11C] 7A, 7C, and 7D, respectively, showing implementations of these geometries with partially reflecting facets in a combining prism. [Figure 11D] FIG. 6C is a diagram similar to FIG. 6B showing an implementation of this geometry with partially reflecting facets in a coupling prism. [Figure 12]Figure 12A is a schematic isometric view of a series of plates having selectively disposed partially reflective coatings for assembly according to the manufacturing method of the present invention, each coating following a pattern required for a different plane of the LOE of Figure 3D. Figure 12B is a schematic isometric view of a stack of layered plates formed by joining together the series of plates of Figure 12A. Figure 12C is a schematic isometric view of a block formed by slicing the stack of Figure 12B along the indicated dashed lines. Figure 12D is a schematic isometric view of (a portion of) an LOE formed by slicing the block of Figure 12C along the indicated dashed lines. [Figure 13] FIG. 1 is a schematic side view of a coupling input configuration employing an air gap and a mirror surface. [Figure 14A] 2A and 2C, respectively, showing image propagation through the optical system for the case of a first set of obliquely oriented partially reflective surfaces. [Figure 14B] 2A and 2C, respectively, showing image propagation through the optical system for the case of a first set of obliquely oriented partially reflective surfaces. [Figure 14C] FIG. 3F is a diagram similar to FIG. 3F for an implementation of the LOE optimized for image propagation described in FIGS. 14A and 14B. [Figure 15] FIG. 10 is a schematic side view of a side-coupled input configuration employing a beam splitter to fill the waveguide with the introduced image and its conjugate. [Figure 16A] FIG. 10 is a side view of an angular representation of image propagation through a second region of the LOE according to a variant implementation of the present invention employing a second set of highly sloped partially reflective surfaces. [Figure 16B] FIG. 16B is a schematic side view of a second region of an LOE implemented according to the optical geometry of FIG. 16A. [Figure 16C] 16C is a graph illustrating a preferred angular dependence of facet reflectivity for the implementation of FIG. 16B. [Figure 17A] 12B is a schematic isometric view of a plate similar to that of FIG. 12A having a selectively deployed partially reflective coating. [Figure 17B] FIG. 1 is an enlarged schematic side view showing a coated area implemented with an abrupt edge. [Figure 17C] FIG. 10 is a schematic diagram of the use of a raised mask to produce a coating with marginal regions of stepped thickness. [Figure 17D] FIG. 17D is a schematic diagram of depositing a multilayer coating with boundary regions of stepped thickness using the principles of FIG. 17C. [Figure 17E] FIG. 10 is a schematic diagram of the use of a second raised mask to produce a complementary transparent coating in areas not coated by the first process. [Figure 17F] 17D and 17E are schematic side views illustrating partially reflective regions resulting from the coating process sequence described with reference to FIGS. 17D and 17E. DETAILED DESCRIPTION OF THE INVENTION

[0017] The present invention is an optical system for directing image illumination introduced into a combined input area to an eye motion box for viewing by a user.

[0018] By way of preamble, in the context of near-eye displays of the type shown in FIG. 1C , particularly advantageous geometric properties, particularly minimizing the dimensions required for a given angular field of view, can be provided by introducing image illumination into the waveguide at a “shallow angle.” This means that all of the image illumination is incident on only one side of both the first and second sets of facets. Typically, in shallow-angle implementations, at least a portion of each image is within about 15 degrees, and more preferably within about 10 degrees, of the plane of the exterior surface of the waveguide. This shortens the optical path from the image projector to the observer's eye and therefore also allows for a reduction in the size of the optical components for a given angular field of view. The present invention relates to many aspects that facilitate shallow-angle implementations of such displays, which present particular design challenges, particularly with regard to input coupling configurations. However, it should be noted that the various aspects of the present invention described herein are not limited to shallow-angle implementations and may be applicable to other implementations as well.

[0019] Figures 2A-2C show angular polar representations of images as they propagate through a waveguide according to the present invention: Figure 2A shows an isometric view, Figure 2C shows a side view, and Figure 2B shows a top view (relative to Figure 2A) corresponding to a view from the front of the waveguide.

[0020] The waveguide has total internal reflection (TIR) ​​boundary circles 228, indicating that images within these circles are not TIR'd and are coupled out to escape the waveguide.

[0021] Image 220A1 is coupled into the waveguide and propagates back and forth to 220A2 by TIR. These images propagate along a very shallow trajectory along the waveguide, with the shallowest portion of the image at only 7 degrees from the waveguide plane (shown as angle 221 in FIG. 2C). Facet 224 (equivalent to 206L in FIG. 1C) in this implementation is perpendicular to the waveguide and therefore reflects images 220A1 and 220A2 directly to 220B1 and 220B2, respectively. Images 220B1 and 220B2 are combined by TIR as they propagate through the waveguide. In the second portion of the LOE, facet 226 (equivalent to 206V in FIG. 1C) combines image 220B2 from the waveguide into image 220C toward the viewer.

[0022] As one non-limiting example, the figures shown herein relate primarily to an image having an aspect ratio of 4:3 and a diagonal field of view of 70 degrees, introduced into a waveguide with a refractive index of 1.6. The design illustrated here produces a complete image (including pupil distance, eye radius, and margins) at the center of the eye, 35 mm from the waveguide. Adapting these implementations for different fields of view and aspect ratios can be readily performed by those skilled in the art based on the description herein.

[0023] One aspect of the present invention relates to optimally arranging partially reflective surfaces (or "facets") in a first portion of a waveguide that is responsible for widening the optical aperture in a first dimension. An earlier patent application published as WO2020 / 049542A1 ("Publication '542") proposed selectively arranging facets within an envelope that encompasses the facets necessary to deliver image illumination to an eye-motion box where the image is displayed.

[0024] An example of the resulting facet evolution is shown in Figure 5A of that publication and reproduced here as Figure 1D. In that implementation, an optical system for directing image illumination introduced into coupling input region 15 to eye motion box 26 for viewing by a user's eyes employs light-directing optical element (LOE) 12 formed from a transparent material having a first region 16 having a first orientation and including a first set of planar, mutually parallel partially reflective surfaces 17, and a second region 18 having a second orientation that is non-parallel to the first orientation and including a second set of planar, mutually parallel partially reflective surfaces 19. A set of mutually parallel outer major surfaces 24 extends across the first and second regions such that both the first and second sets of partially reflective surfaces are located between the outer major surfaces. The second set of partially reflective surfaces 19 are at an oblique angle to the outer major surface 24 so that a portion of the image illumination propagating within the LOE from the first region into the second region by internal reflection at the outer major surface is coupled out of the LOE from the coupling output region 28 towards the eye motion box 26. The first set of partially reflective surfaces 17 are oriented so that a portion of the image illumination propagating within the LOE from the coupling input region by internal reflection at the outer major surface is deflected towards the second region.

[0025] According to the teachings of the '542 publication, certain portions of the first region 16 of the LOE outside the useful facet envelope are implemented as an optical continuum (i.e., without partially reflecting internal surfaces), thereby reducing unwanted "ghost" reflections. However, as shown in the drawings, within the convex polygon envelope, the facets are implemented to fill the entire width of the convex polygon. As a result, a portion of the field of view reflected from a facet located distal to the coupling input region passes through a long series of partially reflecting facets before reaching the facet that delivers that portion of the field of view to the eye-motion box.

[0026] According to one aspect of the invention, the area of ​​facets required to deliver a given field of view to the iMotion Box is further refined to generate a concave polygon that defines the location of the required facets, thereby eliminating some of the intermediate facets that may unnecessarily attenuate the image illumination directed to provide the portion of the field reflected by the facets furthest from the combined input area.

[0027] 3D, a first set of partially reflective surfaces, here labeled 206L, includes a first partially reflective surface 17A proximal to the combined input region 240 to contribute to a first portion of the user's field of view (FOV) as viewed at the eye-motion box, a third partially reflective surface 17C distal to the combined input region to contribute to a third portion of the user's FOV as viewed at the eye-motion box, and a second partially reflective surface 17B positioned at an intermediate surface 22 between the first and third partially reflective surfaces to contribute to a second portion of the user's FOV as viewed at the eye-motion box. In the example shown in FIG. 3D, facet 17A contributes to the right side of the FOV, facet 17C contributes to the left side of the FOV, and facet 17B contributes to a central region of the FOV. A particular feature of this aspect of the invention is that the second partially reflective surface 17B is disposed within a sub-region of the intermediate surface 22, so that image illumination that propagates from the coupling input region to the third partially reflective surface (arrow 23) and contributes to a third portion of the user's field of view when viewed at the eye motion box passes through the intermediate surface 22 without passing through the second partially reflective surface 17B.

[0028] It should be noted that in the present context, the terms "proximal," "distal," and "intermediate" are used herein to indicate relative position with respect to a point or region of interest (in this case, the combined input region 240) and may refer to facets that are relatively close (proximal) or relatively far (distal) or "centrally" (intermediate) with respect to the combined input region, and do not necessarily indicate the closest, furthest, or central facet according to any particular geometric definition.

[0029] A conceptual explanation will now be provided to facilitate a better understanding of the geometrical optics considerations related to preferred design parameters for a given implementation of this aspect of the invention. This explanation is for informational purposes only; however, it should be noted that the usefulness of the claimed invention does not depend on the accuracy of any aspect of this explanation, and that effective and advantageous implementations of the claimed invention may alternatively be implemented by empirical methods.

[0030] FIG. 3A shows a front view of several selected beams of a projected image with parameters corresponding to the exemplary FOV described above. The solid lines represent the image beams introduced horizontally into the waveguide, while the dashed lines represent the beams propagating vertically after horizontal aperture expansion and reflection. Note that any example describing horizontal expansion followed by vertical expansion can be changed to vertical expansion followed by horizontal expansion, without the structure essentially changing. This can be illustrated by simply rotating the above diagram by 90 degrees.

[0031] All beams are transmitted through the entrance pupil of the coupling input region 240. The beams propagate within the waveguide until they are reflected by a set of parallel embedded reflectors (facets) 206L. The facets in this diagram are assumed to be perpendicular to the outer surface of the waveguide. Therefore, every line (solid followed by a dashed line) represents a different horizontal section of the image field projected onto the observer's eye. The vertical field of each section is illuminated by multiple overlapping beams (when viewed from the front) propagating at different angular inclinations (into the page) that are reflected by TIR (such internal reflections are shown in the side view of Figure 1A).

[0032] To simplify the geometric analysis, we first assume that only the center of the eye 208 needs to be illuminated across the entire horizontal field. This could theoretically be achieved by placing infinitesimally small horizontal points 206L infinitesimally close to each other along the trajectory represented as 244A in FIG. 3B. However, the requirement to accommodate horizontal movement of the center of the eye (e.g., due to variations in interpupillary distance between users) dictates the movement of curve 244A. FIG. 3C schematically illustrates the curves for three horizontal positions of the eye 208 as 244A, 244B, and 244C. To encompass the required width of the eye motion box, the facet width must be increased.

[0033] Other requirements include: • There is a finite minimum distance between facets (i.e., they cannot approach infinity). The size of the opening cannot be made too small. • The facets must project a continuous reflection towards the vertical magnification facet 206V.

[0034] 3D shows a facet 206L of finite size suitable for the above conditions. The facet length can vary according to the facet spacing and other optical parameters such as the refractive index, the size of the projected field and the position of the image introduction 240.

[0035] When horizontal magnification facet 206L is at an oblique angle to the outer major surface of the LOE, an image is introduced into the waveguide rotated relative to the waveguide axis, and reflection from facet 206L rotates the image to the required orientation. Thus, the curve for projection to the center of eyeball 208 looks like FIG. 3C, and, further considering the required horizontal eye motion box spread, looks like FIG. 3E, showing further multiplication of curves 244A, 244B, and 244C. This therefore requires somewhat wider facets than a corresponding implementation with orthogonal facets for primary magnification.

[0036] Certain advantages of this embodiment of the invention can be better understood with reference to FIG. 3F. The area of ​​the horizontal magnification facet is designated SL, the area of ​​the "dimple" above it is designated SD, and the area of ​​the vertical magnification facet is designated SV. Due to the concave polygonal shape of SL, light propagating horizontally from entrance 240 propagates primarily within the transparent area SD before being reflected downward within SL. Propagation in the transparent area reduces image illumination loss due to reflections in undesired directions, thereby improving waveguide efficiency. Furthermore, there is no undesired reflection of the scene from SD by the facets, thereby substantially reducing glint and ghost images from the waveguide.

[0037] One possible method for fabricating a horizontal expansion section SL with a "dimple" SD is shown in Figures 3G and 3H. The section containing the SD and SL is subdivided into blocks, as indicated by the bold outline in the area 300 designated in Figure 3G. Figure 3H shows how this structure can be assembled from a transparent prism 302 with the appropriate facet angles and three plates with the appropriate face angles (shown by lines along the plates) that match with corresponding surfaces of the prism 302 and each other to form the assembled structure as shown. This structure is combined with additional transparent prisms and the vertical expansion portion of the LOE to produce the entire structure.

[0038] Optionally, the combined prism and plate may be sliced, or first mounted in a separate stack and sliced ​​together to create waveguides in all its sections.

[0039] The waveguide size described above is shown in FIG. 4A, resulting in the angular size of the image field shown in FIG. 4B. Note that the most horizontally divergent beam 250 illuminates only the bottom corner of the image, thereby requiring a large waveguide area while contributing only to a small portion of the image. In certain applications, it may be acceptable, or even advantageous, to provide a non-rectangular FOV, particularly a trapezoidal image field, as shown in FIG. 4D. In this case, an image is shown having the same total area as FIG. 4B (shown by the dashed line in FIG. 4D for comparison), but distributed as a trapezoid, with a wider field at the top than at the bottom. The LOE generating this FOV is shown in FIG. 4C, with corresponding dimensions; in this case, the horizontal edge light beam 252 illuminates the entire field vertically (at a different angle corresponding to the paper), thus utilizing the LOE size much more efficiently. As a result, the size of the waveguide in FIG. 4C is substantially smaller than that of the waveguide in FIG. 4A, as shown by the exemplary dimensions for the same overall FOV area. The following description illustrates further aspects of the present invention in the non-limiting example context of the configuration of FIG. 4A, but it should be understood that configurations such as the configuration of FIG. 4C can be implemented using the same principles.

[0040] Introducing a shallow image into the waveguide requires a relatively large coupling prism 202. Figure 5A shows, to scale, a waveguide with a horizontal entrance pupil 203L and a coupling prism 202M. Image projector 200 is shown schematically. Figure 5B shows an isometric view of coupling prism 202M with vertical and horizontal apertures 203T and 203L, both coplanar to define a rectangular aperture. Figure 5C shows a side view of coupling prism 202M, which requires a 14 mm long coupling prism designed to couple light from all field angles into the waveguide for a 1.7 mm thick waveguide. A portion of beam 262 enters waveguide 204 through pupil 203V after reflecting from the bottom of the prism. The height of prism 202M above the waveguide is 6.4 mm, which is acceptable for many applications. However, the size of the projector 200 that requires the image to be introduced through the prism 202M also takes up space and volume that may be unacceptable in many applications.

[0041] Prism 202M (and others described herein) preferably has a bottom surface that is parallel to the waveguide surface for uniform reflection, while the top and side surfaces do not require specific optical properties and so their shapes can be other than those shown in these figures.

[0042] Figure 5D shows an alternative architecture in which coupling prism 202L is located above the waveguide and the entrance pupil is prism face 264. In this case, the prism and required projector are larger than in Figures 5A-5C, and this configuration is not optimal.

[0043] One option for reducing the coupling arrangement and overall size of the image projector is shown in Figures 6A and 6B, which show the integration of the image projector with a coupling prism. Although a scanning laser image projector is shown here as a non-limiting example, the same principles can be implemented using image projectors based on other types of image generators, such as those employing LCOS (liquid crystal on silicon) spatial light modulators or micro LED image generators.

[0044] FIG. 6A shows a coupling prism 202P attached to a waveguide 204. FIG. 6B shows a side view of an integrated (embedded) image projector. A laser 270 directs a polarized beam onto a scanning mirror 272, which scans an intermediate image plane across a microlens array (MLA) or diffuser 274. The scanned light passes through the diffuser and is reflected from a polarizing beam splitter 276 to a collimating reflecting lens 278 (combined with a quarter-wave plate). The reflected light passes through the PBS 276 and enters the coupling prism 202P. This coupling prism therefore also functions as part of the PBS 276. Some of the light enters the waveguide directly, and some is reflected by the bottom surface 279 before entering the waveguide, thereby filling the waveguide aperture with both the image and its conjugate.

[0045] In this specification, where a PBS arrangement is illustrated as sequentially reflecting and then transmitting light, or vice versa, it is to be understood that half-wave plates (for single transmission) or quarter-wave plates (for double transmission) are appropriately positioned to achieve the polarization rotation required for the described function. Polarization rotation elements are not mentioned in each case.

[0046] Alternative architectures for combining an image projector with a combining prism are shown in Figures 7A-7D. Figure 7A shows how light (the beams shown are from different field points and therefore not parallel) from an image generator (not shown, but again could be a scanning laser, LCOS, or other) is collimated by refractive lens 280, enters prism section 282, and is reflected by mirror 284 into prism section 202Q and waveguide 204. In this configuration, prism sections 282 and 202Q can be combined into a single prism, as shown in Figure 7B. Also, in this case, there is no need to polarize the light.

[0047] The structure of Figure 7B employs a reflector architecture equivalent to that of Figure 7A, but with a smaller prism. Here, the prism length is on the order of 14 mm, similar to prism 202M of Figure 5C for similar output parameters. However, the height is only 3.2 mm, half that of 202M. As with all of the prisms described herein, the top (non-reflective) surface of prism 283 is preferably absorptive. It is depicted here according to the top beam 260 (defined in Figure 5C), but since the top surface is not optically significant, it could be taller and / or have other shapes.

[0048] The prism may also have a coupling configuration that includes a low index section on its underside, similar to elements 286 or 228 described below with reference to Figures 7C and 7D. The interface can be used to attach to a PBS as an image projector.

[0049] 7C shows the introduction of divergently polarized light corresponding to an image (emitted from an MLA, scanning laser, LCOS, or other image generator) passing through interface 286 into PBS section 290 and reflected by PBS 292 onto reflective collimating lens 294. The reflected collimated light passes through PBS 292 and enters coupling prism 202Q and waveguide 204. In this architecture, some of the light is reflected by the lower sections of prisms 290 and 202Q, so these surfaces must have good image quality and be continuous. Interface 286 can be air, but can also be a low-index medium (relative to prism 290), so TIR occurs for the light reflected from 294.

[0050] FIG. 7D shows an arrangement similar to FIG. 7C, but with an external optical element (eg, a refractive lens 296) to collimate the light, and a flat reflector 298.

[0051] Referring now to Figures 8A and 8B, these illustrate an alternative configuration according to a further aspect of the present invention, in which the coupling prism is integrated with a portion of the waveguide, instead of as an enlargement shown in Figure 5A. Figure 8A shows coupling prism 202Y (dotted area) on top of waveguide 204. Thus, image generator 200 is located closer to the waveguide and has a smaller size. Because all light rays propagating within the waveguide continue to emerge from point 240, horizontal aperture 203L2 is located in the same location as in the previous embodiment. However, vertical aperture 203V is now located at the end of the prism, where the thicker portion of the prism intersects with the major outer surface that defines the main portion of the LOE. Figure 8B shows the shape of the coupling prism in an isometric view. The two apertures 203L2 and 203V2 have the same width as previously described, but to separate their locations, the prism is elongated vertically at 203L2.

[0052] From Figure 8A, it is clear that some of the facets (represented herein as 206A and 206B) are located within the prism. Several possible implementations of these facets in prism 202Y are shown in Figures 9A-9F. For clarity of presentation, facets within the main portion of the LOE are omitted here.

[0053] Figure 9A shows prism 202Y attached to the edge of the waveguide, and Figure 9B shows the arrangement of facets within the prism at equal lengths. However, because the facets do not need to reflect light across the entire width of the prism (as seen in Figure 8A, which shows the limited required width of facets 206A and 206B), Figure 9C shows that the reflective portions (shaded areas) are only a portion of the corresponding planes within the prism.

[0054] Figure 9D shows an alternative configuration in which prism 202Y is formed by attaching a correspondingly shaped block to the top of waveguide 204 (facets of 204 not shown). Figure 9E shows the same structure with facets over the entire cross section of 202Y, exceeding the thickness of the LOE, and Figure 9F implements the reflective region only as a shaded area, corresponding to only the optimal required area.

[0055] In certain cases, the integrated image projectors described above (FIGS. 6A-7D) can be combined with the LOE-integrated combining prisms of FIGS. 8A-9F. Specific geometric considerations in such implementations are illustrated with reference to FIGS. 10A-10D.

[0056] Figure 10A shows a side view of the same angular distribution as Figure 2C, but with the marking of two field points associated with facets 206A (circle) and 206B (square). The same field points are shown in Figure 10B.

[0057] FIG. 10C shows a side view of the waveguide overlap-combining prism, with the shaded area representing the preferred location of the facet associated with 206A, and FIG. 10D shows the preferred location of the facet for 206B. PBS 292 is shown here for reference. It is clear that the preferred location of the facet in the overlap-combining prism should be above the PBS plane. In implementations where the facet is in front of the PBS plane, distortions are introduced into the transmitted image.

[0058] 11A-11D are side views showing implementations of facets into a combining prism incorporating projector optics. Figures 11A, 11B, and 11C show the integration of facet section 202T (marked as a shaded area) into configurations that may be similar to those of Figures 7A, 7C, and 7D, respectively. The 3D representation remains as described with reference to Figures 10A-10D.

[0059] Figure 11D corresponds to Figure 6B and shows that when the PBS orientation is reversed, facet section 202T2 is optimally implemented only partially behind the PBS plane, and the coupling prism therefore extends slightly further outside horizontal aperture surface 203L2 (as shown in Figures 8A-8B).

[0060] The arrangement of facets 202T2 as shown in Figure 11D is also suitable for configurations employing the waveguide architecture of Figures 4C and 4D.

[0061] 12A-12D, as an alternative to the manufacturing process described above with reference to FIGS. 3G-3H, the facet patterns of FIGS. 3D or 3F can be manufactured based on stacking and slicing selectively coated plates. In this case, the plates are coated with a predetermined pattern as shown in FIG. 12A, which shows a set of plates shown from the front 300F coated with a predetermined pattern 302F. These patterns have widths and positions according to the required coated facets, shown at 112. These patterns are preferably generated by masking the uncoated portions of the waveguide during coating. It is also possible to apply an anti-reflective coating only to other portions of plate 304F to maintain a flat surface or to keep the phase of the transmitted light through 304 equal to that of the light through 302.

[0062] Figure 12B shows the stack formed by joining the partially coated plates together, with the dashed line indicating the slice plane across the stack. Figure 12C shows one slice with a side view of plate 300S and reflective pattern 302S. Another slice is performed as indicated by the dashed line in Figure 12C to produce the final top section of Figure 12D, which corresponds to the top of the LOE in Figure 3D.

[0063] Note that the order of the slices may be changed, and it will be understood that the illustrations of Figures 12A-12D are highly schematic and that typically a larger number of plates will be used.

[0064] Reducing the refractive index of coupling prism 202M can also be used to reduce the size of the prism, thereby making the system more compact. Figure 13 shows an extreme example of this concept, where 202M is replaced with an air gap and a mirror 310 that is flush with the lower waveguide surface 312. Light from projection optics 308 is directed into vertical entrance 306, entering waveguide 204 and then mirror surface 310. The lower refractive index of the air gap changes the beam angle. As a result, the mirror length is shorter than the length of prism 202M. The angle of lower beam 262 is now 11.5 degrees instead of 7 degrees as before. As a result, the mirror length is now 8.5 mm instead of 14 mm as in Figure 5C. Once the beam enters the waveguide, its angular distribution resembles that of Figure 5C. The mirror can be stacked on the waveguide for mechanical attachment.

[0065] A conceptually similar approach using low refractive index materials can be implemented using low refractive index glass prisms, which can compensate for some of the dispersion created by the angle of incidence at the light input surface 306.

[0066] In the embodiment detailed above, facets 206L employed for the first set of facets are orthogonal to the major outer surfaces of the LOE, as detailed in FIGS. 2A-2C. In an alternative set of embodiments shown with reference to FIGS. 14A-14C, the first set of facets is implemented using beveled facets 336. FIG. 14A shows an isometric view of such a system used to transmit shallow angle images, and FIG. 14B shows a partial side view corresponding to the angular view. This non-limiting example employs a trapezoidal FOV equivalent to the minimum size image shown in FIGS. 4C and 4D, although it will be apparent that this configuration can also be used for rectangular FOVs.

[0067] In this architecture, initial horizontally propagating image 334A1 is coupled to 334A2 by TIR reflection. Only 334A2 is redirected toward the second region of LOE 334B1 by angled facet 336, which is at an oblique angle to the waveguide plane. Facet 336 is preferably coated with a multilayer dielectric coating, as known in the art, to provide a desired degree of partial reflectivity for the range of incident angles corresponding to image 334A1 (as in all of the above embodiments), while being primarily transparent for the range of incident angles corresponding to image 334A1, to minimize energy loss and the formation of undesired reflections. Image 334B1 is coupled to 334B1 by TIR as it propagates at a shallow angle along the second region of the waveguide. Image 334B2 is then coupled to 334C by facet 338 (shown only in FIG. 14A ), in a manner equivalent to facet 226 of FIGS. 2A-2C .

[0068] FIG. 14C shows a waveguide footprint equivalent to FIG. 4C, where the shaded region 340 is the optimum area for the first set of facets 336 and region 342 is the optimum area for the output coupling facet 338.

[0069] The various coupling input prism arrangements described above are configured to couple both the image and its conjugate into the LOE, "filling" the waveguide with the image. An alternative, particularly attractive approach for injecting shallow angle images into the waveguide is to directly inject the image into the waveguide, as shown in FIG. 15. To fill the waveguide 370 with the injected image and its conjugate, the waveguide 370 has a coupling region 372 with a partial reflector 374 aligned with the central plane of the waveguide. The partial reflector 374 is most preferably implemented as a 50% reflector, is angle insensitive, and is preferably chromatically corrected, such as with a partially silvered surface.

[0070] In Figure 15, three beams are shown associated with the lowest point in the field, and therefore the shallowest beam of image illumination. The lower beam (solid arrow) passes through collimating optic 376 and combining prism 378 to enter the waveguide. After one reflection, it undergoes partial reflection by 374 and splits into two beams. The middle beam (dashed line) splits at the entrance, and the upper beam (dashed dotted line) splits in half along combiner 372. It is clear that after the beams are split (thereby splitting the image illumination between the image and its conjugate), the waveguide is uniformly illuminated. Therefore, a uniform image is expected after the light is combined out.

[0071] If the partial reflector 374 has 50% reflectivity and 50% transmission, the waveguide will be uniformly illuminated for a length equivalent to that of Figure 5C (14 mm in our example). In this configuration, the aperture of the illumination optic 376 is very small because the optic is nearly adjacent to the entrance to the waveguide, reducing the thickness of the optical assembly.

[0072] 16A-16C, which show an alternative scheme for coupling an image in a second region of the LOE toward an eye-motion box for viewing by the user's eye. The angular representation in FIG. 16A is similar to FIG. 2C, except that in this case, output coupling facet 390 has a steeper angle. As a result, image 220B1 is coupled out to 220C (instead of 220B1 as in FIG. 2C). In this configuration, image 220B can be taller and is not limited by the angle of facet 390.

[0073] Figure 16B shows a schematic of what such a configuration would look like in real space. As the beam propagates downward (in this drawing), it is partially reflected downward from the waveguide by the facets. In such a configuration, it is preferable to have closely spaced facets to ensure a uniform image.

[0074] Figure 16C shows a schematic of the preferred reflectivity of the facets for such a configuration, where low reflectivity is desired at low angles of incidence (near normal) and high reflectivity (for out-coupling) at high angles. Again, such properties are easily achieved using appropriately designed multilayer dielectric coatings, as is well known in the art.

[0075] 17A-17F, a variation of the preferred embodiment described herein involves selectively applying a reflective coating to only a portion of the plates, then assembling the plates into a stack, and then slicing some or all of the LOEs from the stack. Partial coating of the facets, as shown in FIG. 17A, can result in scattering effects at the edges of the coating due to physical discontinuities in the coating, as shown in the schematic cross-section of FIG. 17B. Furthermore, this mechanical discontinuity can cause mechanical stresses in the plates when stacked (as in FIG. 12B). FIGS. 17C-17F illustrate a preferred manufacturing method in accordance with one aspect of the present invention that overcomes these limitations.

[0076] Figure 17C illustrates the principle of coating properties when a mask 394 is placed close to the plate surface 300F but spaced slightly from the surface. When coating (thick arrows) is performed, the plate is coated where there is no mask, but close to the mask, a gradual increase in coating thickness occurs around the edge of the mask 396. Figure 17D shows schematically how this property can be used to create a gradual decrease ("tail-off") in the coating pattern 302F around the desired area.

[0077] For thin coating thicknesses, this configuration of gradually thinning coatings may be sufficient. For thicker coatings, it may be advantageous to use a second mask over region 302F (FIG. 17E) to apply a complementary transparent coating 98 beside reflective area 302F, as shown in FIG. 17F. Note that the mask in FIG. 17E is typically not the exact inverse of the mask in FIG. 17D, as it is preferably increased around the boundary by an amount corresponding to the tailing-off region (which can be determined empirically).

[0078] It will be understood that the above description is intended to serve as an example only, and that many other embodiments are possible within the scope of the invention as defined in the appended claims.

Claims

1. 1. A method for manufacturing a waveguide, the method comprising: (a) providing (i) a transparent block of transparent material having no internal reflective surfaces, the transparent block having a first planar surface and a second planar surface non-parallel to the first planar surface, (ii) a first faceted block of transparent material including a first set of mutually parallel partially reflective internal surfaces, the first faceted block having a flat first mounting surface, and (iii) a second faceted block of transparent material including a second set of mutually parallel partially reflective internal surfaces, the second faceted block having a flat second mounting surface; (b) bonding the first mounting surface of the first facet block to the first planar surface of the transparent block and the second mounting surface of the second facet block to the second planar surface of the transparent block, thereby forming a rigid optical assembly in which the first set of partially reflective inner surfaces are parallel to the second set of partially reflective inner surfaces and an edge of the transparent block extends linearly between at least one of the first set of partially reflective inner surfaces and at least one of the second set of partially reflective inner surfaces; and (c) slicing the rigid optical assembly across the transparent block and the first and second facet blocks to form a plurality of waveguides.

2. step (a) further comprises providing a third facet block of transparent material including a third set of mutually parallel partially reflective inner surfaces, the third facet block having a flat third mounting surface; 2. The method of claim 1, wherein step (b) further comprises bonding the third mounting surface of the third facet block to the third planar surface of the transparent block such that the third facet block forms part of the rigid optical assembly, the third set of partially reflective inner surfaces being parallel to the first and second sets of partially reflective inner surfaces, and the third planar surface of the transparent block being non-parallel to both the first and second planar surfaces.

3. The method of claim 2 , wherein the first and second facet blocks abut the third facet block in the rigid optical assembly.

4. The method of claim 2 , wherein the first, second, and third facet blocks in the rigid optical assembly form a contiguous mass around a portion of the transparent block.

5. 2. The method of claim 1, further comprising, before slicing in step (c), mounting the rigid optical assembly against a mounting surface of a stack of bonded plates having partially reflective interfaces, the interfaces and the mounting surface being arranged such that after slicing, each of the plurality of waveguides includes a waveguide section having a set of output coupling partial reflectors oriented at an oblique angle relative to a plane relative to the slicing.

6. (a) a transparent block of transparent material having no internal reflective surfaces; (b) a first faceted block of transparent material including a first set of mutually parallel partially reflective inner surfaces, the first faceted block joined to the transparent block at a first planar interface; and (c) a second faceted block of transparent material including a second set of mutually parallel partially reflective inner surfaces, the second faceted block joined to the transparent block at a second planar interface that is non-parallel to the first interface; the transparent block, the first facet block, and the second facet block form at least a portion of a rigid optical assembly surrounded by a set of parallel surfaces for supporting internal reflection within the rigid optical assembly; a waveguide, wherein the first set of partially reflective inner surfaces are parallel to the second set of partially reflective inner surfaces, and an edge of the transparent block extends linearly between at least one of the first set of partially reflective inner surfaces and at least one of the second set of partially reflective inner surfaces.

7. a third faceted block of transparent material including a third set of mutually parallel partially reflective inner surfaces, the third faceted block joined to the transparent block at a third planar interface; 7. The waveguide of claim 6, wherein the third facetted block forms part of the rigid optical assembly, the third set of partially reflective inner surfaces being parallel to the first and second sets of partially reflective inner surfaces, and the third interface of the transparent block being non-parallel to both the first and second interfaces.

8. 8. The waveguide of claim 7, wherein the first and second facet blocks abut the third facet block.

9. 8. The waveguide of claim 7, wherein the first, second, third facetted blocks form a contiguous body around a portion of the transparent block.

10. 7. The waveguide of claim 6, wherein the rigid optical assembly further comprises an output coupling waveguide section including a set of output coupling partial reflectors oriented at an oblique angle to the set of parallel surfaces to support internal reflection within the rigid optical assembly.

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