Anti-reflective coating for metasurfaces

An anti-reflective coating with a lower refractive index than the metasurface nanostructures addresses reflection issues in AR/VR technologies, enhancing image quality and user comfort by reducing optical artifacts.

JP7855052B2Active Publication Date: 2026-05-07MAGIC LEAP INC
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
MAGIC LEAP INC
Filing Date
2024-12-06
Publication Date
2026-05-07

AI Technical Summary

Technical Problem

Existing augmented reality (AR) and virtual reality (VR) technologies face challenges in providing a comfortable and natural presentation of virtual image elements among real-world inputs due to unwanted reflections from metasurfaces, which can cause optical artifacts like afterimages.

Method used

The implementation of an anti-reflective coating with a refractive index lower than the metasurface nanostructures, applied conformally across the metasurface, reduces reflections by more than 50% and minimizes optical artifacts.

Benefits of technology

The anti-reflective coating enhances image quality by reducing unwanted reflections, enabling clearer and more comfortable AR/VR experiences by minimizing afterimages and improving perceptual quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide favorable antireflection coatings for metasurfaces.SOLUTION: Antireflection coatings for metasurfaces are described herein. In some embodiments, the metasurface may include a substrate, a plurality of nanostructures thereon, and an antireflection coating disposed over the nanostructures. The antireflection coating may be a transparent polymer, for example a photoresist layer, and may have a refractive index lower than the refractive index of the nanostructures and higher than the refractive index of an overlying medium (e.g., air). Advantageously, the antireflection coatings may reduce or eliminate ghost images in an augmented reality display in which the metasurface is incorporated.SELECTED DRAWING: Figure 10
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Description

Technical Field

[0001] This application claims the benefit of priority under 35 U.S.C. § 119(e) of U.S. Provisional Application No. 62 / 451,587, filed on January 27, 2017, the entire disclosure of which is incorporated herein by reference.

[0002] This application incorporates by reference in their entirety the following patent applications: U.S. Application No. 14 / 555,585, filed on November 27, 2014; U.S. Application No. 14 / 690,401, filed on April 18, 2015; U.S. Application No. 14 / 212,961, filed on March 14, 2014; U.S. Application No. 14 / 331,218, filed on July 14, 2014; U.S. Patent Application No. 15 / 342,033, filed on November 2, 2016 (Attorney Docket No. MLEAP.027A); U.S. Provisional Application No. 62 / 333,067, filed on May 6, 2016 (Attorney Docket No. MLEAP.066PR); U.S. Provisional Application No. 62 / 451,608, titled "DIFFRACTION GRATINGS FORMED BY METASURFACES HAVING DIFFERENTLY ORIENTED NANOBEAMS", filed on January 27, 2017 (Attorney Docket No. MLEAP.092PR); and U.S. Provisional Application No. 62 / 451,615, titled "DIFFRACTION GRATINGS BASED ON METASURFACES HAVING ASYMMETRIC OPTICAL - ELEMENTS", filed on January 27, 2017 (Attorney Docket No. MLEAP.103PR).

[0003] The present disclosure relates to optical systems, such as display systems, including augmented reality systems.

Background Art

[0004] Modern computing and display technologies are driving the development of systems for so-called "virtual reality" or "augmented reality" experiences, in which digitally reproduced images or parts thereof are presented to the user in a manner that appears, or can be perceived, as real. Virtual reality or "VR" scenarios typically involve the presentation of digital or virtual image information without transparency to other real-world visual inputs, while augmented reality or "AR" scenarios typically involve the presentation of digital or virtual image information as an extension to the visualization of the real world around the user. Mixed reality or "MR" scenarios are a type of AR scenario that typically involves virtual objects integrated into and responding to the natural world. For example, an MR scenario may include AR image content that appears blocked by, or is perceived to interact with, objects in the real world in a different way.

[0005] Referring to Figure 1, an augmented reality scene 10 is depicted. The user of the AR technology sees a real-world park-like setting 20 featuring people, trees, buildings in the background, and a concrete platform 30. The user also perceives that they are "seeing" "virtual content" such as a robot figure 40 standing on the real-world platform 30 and a flying cartoon-like avatar character 50 that looks like an anthropomorphic bumblebee. These elements 50 and 40 are "virtual" in that they do not exist in the real world. The human visual perception system is complex, and generating AR technology that facilitates a comfortable, natural, and rich presentation of virtual image elements among other virtual or real-world image elements is difficult.

[0006] The systems and methods disclosed herein address various challenges related to AR or VR technologies. [Overview of the project] [Means for solving the problem]

[0007] According to several embodiments, optical systems are presented herein. In some embodiments, the optical system may comprise an optically transparent substrate, a metasurface covering the substrate having a plurality of nanostructures, and an anti-reflective coating comprising an optically transparent material conformally arranged across the nanostructures of the metasurface, wherein the optically transparent material has a refractive index less than that of the nanostructures.

[0008] According to some embodiments, the anti-reflective coating is an interference coating. In some embodiments, the metasurface comprises a diffraction grating. In some embodiments, the metasurface comprises an asymmetric diffraction grating. In some embodiments, the metasurface comprises a Pancharatnam Berry phase optical element (PBOE). In some embodiments, the metasurface comprises a multi-layer nanostructure. In some embodiments, the optically transparent material comprises a polymer. In some embodiments, the optically transparent material comprises a photoresist. In some embodiments, the optically transparent material has a refractive index of about 1.2 to about 2. In some embodiments, the distance from the top surface of the nanostructure to the top surface of the anti-reflective coating is about 10 nm to about 1 micron. In some embodiments, the distance from the top surface of the nanostructure to the top surface of the anti-reflective coating is about 30 nm to about 250 nm. In some embodiments, the anti-reflective coating forms a planar layer extending between and across the nanostructures.

[0009] According to some other embodiments, an optical system is presented herein comprising an anti-reflective coating for an optical element having a metasurface, the anti-reflective coating comprising a layer of optically transparent material having a refractive index greater than 1 and less than the refractive index of the material constituting the metasurface, wherein the layers of polymer material are conformally arranged across the metasurface.

[0010] According to some embodiments, the optically transparent material comprises a polymer. In some embodiments, the optically transparent material comprises a photoresist. In some embodiments, the optically transparent material has a refractive index of about 1.2 to about 2. In some embodiments, the distance from the top surface of the metasurface to the top surface of the anti-reflective coating is about 10 nm to about 1 micron. In some embodiments, the anti-reflective coating reduces the amount of incident light reflected by the metasurface by more than about 50% compared to the amount of incident light reflected by a substantially similar metasurface without the anti-reflective coating. In some embodiments, the incident light has an incident angle of about -50° to 50°.

[0011] Further embodiments provide a method for forming an anti-reflective coating on a metasurface. In some embodiments, the method may include the steps of: providing an optically transparent substrate having a metasurface, wherein the metasurface comprises a plurality of nanostructures; and depositing a layer of optically transparent material over the plurality of nanostructures, wherein the layer of optically transparent material forms an anti-reflective coating.

[0012] According to some embodiments, the optically transparent material comprises a polymer. In some embodiments, the optically transparent material comprises a photoresist. In some embodiments, the distance from the top surface of the nanostructure to the top surface of the anti-reflective coating formed is about 10 nm to about 1 micron. In some embodiments, the step of conformally depositing the optically transparent material comprises the step of spin-coating the optically transparent material across the nanostructure. In some embodiments, the step of conformally depositing the optically transparent material comprises the step of performing a chemical vapor deposition (CVD) process.

[0013] Various additional embodiments are provided below.

[0014] 1. An optical system, An optically transparent substrate, A metasurface covering a substrate, the metasurface comprising a plurality of nanostructures, An anti-reflective coating comprising an optically transparent material conformally arranged across the nanostructure of a metasurface, wherein the optically transparent material has a refractive index less than that of the nanostructure, and the anti-reflective coating An optical system equipped with [the necessary components].

[0015] 2. The optical system according to Embodiment 1, wherein the anti-reflective coating is an interference coating.

[0016] 3. The optical system according to Embodiment 1, wherein the metasurface comprises a diffraction grating.

[0017] 4. The optical system according to Embodiment 3, wherein the metasurface comprises an asymmetric diffraction grating.

[0018] 5. The optical system according to any one of Embodiments 1-3, wherein the metasurface comprises a Pancharatnam Berry phase optical element (PBOE).

[0019] 6. The optical system according to Embodiment 1, wherein the metasurface comprises a multi-stage nanostructure.

[0020] 7. An optical system according to any one of Embodiments 1-6, wherein the optically transparent material includes a polymer.

[0021] 8. The optical system according to Embodiment 7, wherein the optically transparent material includes a photoresist.

[0022] 9. An optical system according to any one of Embodiments 1-8, wherein the optically transparent material has a refractive index of about 1.2 to about 2.

[0023] 10. An optical system according to any one of Embodiments 1-9, wherein the distance from the top surface of the nanostructure to the top surface of the anti-reflective coating is approximately 10 nm to approximately 1 micron.

[0024] 11. The distance from the top surface of the nanostructure to the top surface of the antireflection coating is from about 30 nm to about 250 nm, the optical system according to embodiment 10.

[0025] 12. The antireflection coating forms a planarization layer that extends between and across the nanostructures, the optical system according to any one of embodiments 1-11.

[0026] 13. An optical system, An antireflection coating for an optical element having a metasurface, the antireflection coating comprising: A layer of an optically transparent material having a refractive index greater than 1 and less than the refractive index of the material constituting the metasurface, The layer of polymer material is conformally disposed across the metasurface, The antireflection coating [[ID=IS]]Comprising an optical system.

[0027] 14. The optically transparent material includes a polymer, the antireflection coating according to embodiment I3.

[0028] 15. The optically transparent material includes a photoresist, the antireflection coating according to embodiment 14.

[0029] 16. The optically transparent material has a refractive index of about 1.2 to about 2, the antireflection coating according to any one of embodiments 13-15.

[0030] 17. The distance from the top surface of the metasurface to the top surface of the antireflection coating is from about 10 nm to about 1 micron, the antireflection coating according to any one of embodiments 13-16.

[0031] 18. The antireflection coating reduces the amount of incident light reflected by the metasurface by more than about 50% compared to the amount of incident light reflected by a substantially similar metasurface that does not include the antireflection coating, the antireflection coating according to any one of embodiments 13-17.

[0032] 19. The anti-reflective coating according to Embodiment 18, wherein the incident light has an incident angle of approximately -20° to 20°.

[0033] 20. A method for forming an anti-reflective coating on a metasurface, the method being: To provide an optically transparent substrate having a metasurface, wherein the metasurface comprises a plurality of nanostructures, Depositing layers of optically transparent material across multiple nanostructures and Includes, A method comprising forming an anti-reflective coating on a layer of optically transparent material.

[0034] 21. The method according to Embodiment 20, wherein the optically transparent material comprises a polymer.

[0035] 22. The method according to Embodiment 21, wherein the optically transparent material includes a photoresist.

[0036] 23. The method according to any one of Embodiments 20-22, wherein the distance from the top surface of the nanostructure to the top surface of the anti-reflective coating formed is approximately 10 nm to approximately 1 micron.

[0037] 24. The method according to any one of Embodiments 20-23, wherein conformally depositing an optically transparent material includes spin-coating an optically transparent material across a nanostructure.

[0038] 25. The method according to any one of Embodiments 20-23, wherein conformally depositing an optically transparent material is performed by carrying out a chemical vapor deposition (CVD) process. The present invention provides, for example, the following: (Item 1) An optical system, An optically transparent substrate, A metasurface covering the substrate, wherein the metasurface comprises a plurality of nanostructures, An anti-reflective coating comprising an optically transparent material conformally arranged across the nanostructure of the metasurface, wherein the optically transparent material has a refractive index less than the refractive index of the nanostructure, and An optical system equipped with [the necessary components]. (Item 2) The optical system described in item 0, wherein the anti-reflective coating is an interference coating. (Item 3) The optical system according to item 0, wherein the metasurface comprises a diffraction grating. (Item 4) The optical system according to item 0, wherein the metasurface comprises an asymmetric diffraction grating. (Item 5) The optical system according to item 0, wherein the metasurface comprises a Pancharatnam Berry phase optical element (PBOE). (Item 6) The aforementioned metasurface comprises a multi-stage nanostructure, as described in item 0. (Item 7) The optically transparent material comprises a polymer, as described in item 0 of the optical system. (Item 8) The optically transparent material includes a photoresist, as described in item 0 of the optical system. (Item 9) The optically transparent material has a refractive index of about 1.2 to about 2, as described in item 0 of the optical system. (Item 10) The optical system described in item 0, wherein the distance from the top surface of the nanostructure to the top surface of the anti-reflective coating is approximately 10 nm to approximately 1 micron. (Item 11) The optical system described in item 0, wherein the distance from the top surface of the nanostructure to the top surface of the anti-reflective coating is approximately 30 nm to approximately 250 nm. (Item 12) The optical system according to any one of items 0-0, wherein the anti-reflective coating forms a planar layer extending between and over the nanostructures. (Item 13) An optical system, An anti-reflective coating for an optical element having a metasurface, wherein the anti-reflective coating is It comprises a layer of optically transparent material having a refractive index greater than 1 and less than the refractive index of the material constituting the metasurface, The polymer material layers are arranged conformally across the metasurface. Anti-reflective coating An optical system equipped with [the necessary components]. (Item 14) The optically transparent material is an anti-reflective coating as described in item 0, comprising a polymer. (Item 15) The optically transparent material is an anti-reflective coating as described in item 0, which includes a photoresist. (Item 16) The optically transparent material is an anti-reflective coating as described in item 0, having a refractive index of about 1.2 to about 2. (Item 17) The anti-reflective coating described in item 0, wherein the distance from the top surface of the meta surface to the top surface of the anti-reflective coating is approximately 10 nm to approximately 1 micron. (Item 18) The anti-reflective coating according to item 0, wherein the anti-reflective coating reduces the amount of incident light reflected by the metasurface by more than about 50% compared to the amount of incident light reflected by a substantially similar metasurface without the anti-reflective coating. (Item 19) The incident light has an incident angle of approximately -20° to 20°, and is coated with the anti-reflective coating described in item 18. (Item 20) A method for forming an anti-reflective coating on a metasurface, wherein the method is To provide an optically transparent substrate having a metasurface, wherein the metasurface comprises a plurality of nanostructures, Depositing layers of optically transparent material across the plurality of nanostructures and Includes, A method for forming the anti-reflective coating on the optically transparent layer. (Item 21) The optically transparent material is the method according to item 0, comprising a polymer. (Item 22) The optically transparent material is the method according to item 0, comprising a photoresist. (Item 23) The method according to any one of items 0-0, wherein the distance from the uppermost surface of the nanostructure to the uppermost surface of the anti-reflective coating formed is approximately 10 nm to approximately 1 micron. (Item 24) The method according to item 0, wherein conformally depositing the optically transparent material includes spin-coating the optically transparent material over the nanostructure. (Item 25) The method according to item 0, wherein the conformal deposition of the optically transparent material is carried out by performing a chemical vapor deposition (CVD) process. [Brief explanation of the drawing]

[0039] [Figure 1] Figure 1 illustrates the user's view of augmented reality (AR) through an AR device.

[0040] [Figure 2] Figure 2 illustrates an embodiment of a wearable display system.

[0041] [Figure 3] Figure 3 illustrates a conventional display system for simulating a three-dimensional image for the user.

[0042] [Figure 4] Figure 4 illustrates aspects of an approach to simulating a 3D image using multiple depth planes.

[0043] [Figure 5]Figures 5A-5C illustrate the relationship between the radius of curvature and the radius of focus.

[0044] [Figure 6] Figure 6 illustrates an example of a waveguide stack for outputting image information to the user.

[0045] [Figure 7] Figure 7 illustrates an example of an output beam produced by a waveguide.

[0046] [Figure 8] Figure 8 illustrates an embodiment of a stacked waveguide assembly, where each depth plane includes an image formed using multiple different primary colors.

[0047] [Figure 9A] Figure 9A shows a cross-sectional side view of an embodiment of a stacked set of waveguides, each containing an internally coupled optical element.

[0048] [Figure 9B] Figure 9B shows a perspective view of an embodiment of the multiple stacked waveguides shown in Figure 9A.

[0049] [Figure 9C] Figure 9C shows top and bottom plan views of the embodiment of the multiple stacked waveguides shown in Figures 9A and 9B.

[0050] [Figure 10] Figure 10 shows a cross-sectional side view of an exemplary optical structure, including a metasurface and an anti-reflective coating.

[0051] [Figure 11A] Figure 11A illustrates the upper and lower views of an exemplary metasurface equipped with an asymmetric Pancharatnam Berry phase optical element (PBOE).

[0052] [Figure 11B]Figure 11B shows a perspective view of the metasurface of Figure 11A with an upper anti-reflective coating.

[0053] [Figure 11C] Figure 11C is a plot of transmission and reflection as a function of the angle of incidence of light for an optical structure having the general structure shown in Figures 11A-11B.

[0054] [Figure 12A] Figure 12A shows a cross-sectional perspective view of an exemplary metasurface, which includes an asymmetric diffraction grating and an anti-reflective coating.

[0055] [Figure 12B] Figure 12B shows a cross-sectional side view of the exemplary metasurface and anti-reflective coating shown in Figure 12.

[0056] [Figure 12C] Figure 12C is a plot of the transmission and reflection spectra for the optical structures shown in Figures 12A-12B.

[0057] [Figure 13] Figures 13A-13D are cross-sectional views of intermediate structures at various stages of fabrication of exemplary optical structures with metasurfaces according to several embodiments.

[0058] [Figure 14] Figures 14A-14D are cross-sectional views of intermediate structures at various stages of fabrication of exemplary optical structures with metasurfaces according to several embodiments.

[0059] [Figure 15] Figure 15 shows a cross-sectional side view of a metasurface having a conformal anti-reflective coating. [Modes for carrying out the invention]

[0060] Metasurfaces, also known as metamaterial surfaces, offer an opportunity to achieve virtually flat, aberration-free optics at scales far smaller than those of geometric optics. While not limited by theory, in some embodiments, metasurfaces include dense arrays of surface structures or nanostructures that function as resonant optical antennas. The resonant nature of the interaction between light and the surface structure provides the ability to manipulate optical wavefronts. In some cases, metasurfaces may allow for the replacement of bulky or difficult-to-manufacture optical components using thin planar elements formed by a simple patterning process.

[0061] It should be understood that optical elements formed from metasurfaces can function in reflective and / or transmissive modes. In reflective mode, a metasurface can reflect light at a desired angle. In transmissive mode, a metasurface can transmit light through its body while also deflecting that light at a desired angle. Undesirably, a metasurface acting in transmissive mode can also reflect incident light, for example, due to Fresnel reflection at the interface with other materials. In addition, with respect to a metasurface acting in reflective mode, the angle at which the metasurface is configured to reflect light may differ from the angle at which light is reflected from the interface.

[0062] Undesirably, unintended reflections by metasurfaces can cause optical artifacts. For example, in a display device where a metasurface is used as an optical element to direct light encoded with image content (e.g., light modified by a spatial light modulator), reflections can produce afterimages due to round-trip reflections of some of the light along the optical path before reaching the user. For example, a metasurface may form an internal coupling optical element configured to internally couple light into a waveguide and, consequently, output image content to the user. If some of this light is reflected rather than internally coupled into the waveguide, the reflected light can backpropagate to an optical projector or light source, which then reflects the light back to the metasurface for internal coupling into the waveguide and ultimately output to the user. Due to these round-trip reflections, light from a previous video image frame may be supplied to the waveguide along with the light encoding the current image frame. The light encoding the previous image frame may become visible to the user as an afterimage, degrading the image quality of the display device.

[0063] In some embodiments, an anti-reflective coating can reduce or eliminate the reflection of light from the metasurface. The anti-reflective coating may be formed from an optically transparent layer of a material such as a polymer layer, for example, a layer of photoresist. In some embodiments, no air or other material can be present between the metasurface and the anti-reflective coating; that is, the anti-reflective coating can be in direct contact with the metasurface. The material forming the anti-reflective coating may have a refractive index lower than that of the nanostructure of the metasurface, but higher than that of the material or medium (e.g., air) forming the interface between the metasurface and the anti-reflective coating on the opposite side.

[0064] In some embodiments, the anti-reflective coating may be an interference coating, and the thickness of the material layer is selected to provide disruptive interference between light reflected from the top and bottom surfaces of the layer. Preferably, the layer thickness is selected to provide this interference for visible wavelength light. In some embodiments, the metasurface may be part of a color display utilizing multiple primary colors. As a result, a particular metasurface may be exposed only to light of an associated limited range of wavelengths corresponding to a particular primary color, and the anti-reflective coating may have a thickness selected to provide interference for light having this associated limited range of wavelengths.

[0065] In some embodiments, the anti-reflective coating may be a planar layer extending across and between nanostructures forming a metasurface, forming a planar surface of the nanostructure. Such a planar layer can advantageously provide anti-reflective properties over a wide range of incident angles of light. In some embodiments, the anti-reflective coating may be a conformal layer positioned on the surface of the nanostructure forming the metasurface. The conformal layer may be continuous and extend across and between multiple nanostructures, or isolated on individual nanostructures.

[0066] Advantageously, the reduction in reflection can reduce or eliminate optical effects such as afterimages, thereby enabling the display device to output images with higher perceptual quality. In some embodiments, an anti-reflective coating can reduce the amount of light reflected by the metasurface by about 50%, 75%, 85%, 90%, 95%, 99%, or more compared to the same structure without the anti-reflective coating. The anti-reflective coating can be applied particularly advantageously to a metasurface that operates in a transmission mode where reflection is not part of the metasurface design.

[0067] Here, we refer to the drawings, where similar reference numbers refer to the same parts throughout.

[0068] In some embodiments, metasurfaces may be advantageously applied to form optical elements within display devices, such as display devices for AR or VR display systems. These display systems may display virtual content to a user or viewer, and AR systems may also allow a user to see the world around them by transmitting light from the surrounding environment to the user's eyes. Preferably, the virtual content is displayed on a wearable head-mounted display, for example, as part of eyewear that projects image information onto the user's eyes. It should be understood that a “head-mounted” display, as used herein, is a display that can be mounted on the viewer’s head.

[0069] Figure 2 illustrates an embodiment of a wearable display system 80. The display system 80 includes a head-mounted display 62 and various mechanical and electronic modules and systems to support the functions of the display 62. The display 62 may be coupled to a frame 64, which is wearable by the display system user or viewer 60 and is configured to position the display 62 in front of the user's eyes. In some embodiments, the display 62 may be considered eyewear. In some embodiments, a speaker 66 is coupled to the frame 64 and positioned adjacent to the user's ear canal (in some embodiments, another speaker, not shown, is positioned adjacent to the user's other ear canal to provide stereo / adjustable sound control). In some embodiments, the display system may also include one or more microphones 67 or other devices to detect sound. In some embodiments, the microphones may be configured to allow the user to provide input or commands (e.g., selection of voice menu commands, natural language questions, etc.) to the system 80 and / or enable audio communication with other persons (e.g., other users of a similar display system). The microphone may also be configured as a peripheral sensor to continuously collect audio data (e.g., passively collected from the user and / or the environment). Such audio data may include user sounds such as heavy breathing or environmental sounds such as commotion indicating a nearby event. The display system may also include a peripheral sensor 30a, which is separate from the frame 64 and may be mounted on the user 60's body (e.g., on the user 60's head, torso, limbs, etc.). In some embodiments, the peripheral sensor 30a may be configured to obtain data characterizing the user 60's physiological state, as further described herein. For example, the sensor 30a may be an electrode.

[0070] Figure 2 illustrates an embodiment of a wearable display system 60. The display system 60 includes a display 70 and various mechanical and electronic modules and systems to support the functions of the display 70. The display 70 may be coupled to a frame 80, which is wearable by a display system user or viewer 90 and is configured to position the display 70 in front of the user 90's eyes. The display 70 may be considered eyewear in some embodiments. In some embodiments, a speaker 100 is coupled to the frame 80 and is configured to be positioned adjacent to the user 90's ear canal (in some embodiments, another speaker, not shown, may optionally be positioned adjacent to the user's other ear canal to provide stereo / shapeable sound control). The display system may also include one or more microphones 110 or other devices to detect sound. In some embodiments, the microphone may be configured to allow the user to provide input or commands to the system 60 (e.g., selection of voice menu commands, natural language questions, etc.) and / or enable audio communication with other persons (e.g., other users of a similar display system). The microphone may further be configured as a peripheral sensor to collect audio data (e.g., sounds from the user and / or the environment). In some embodiments, the display system may also include a peripheral sensor 120a, which is separate from the frame 80 and may be mounted on the user 90's body (e.g., on the user 90's head, torso, limbs, etc.). In some embodiments, the peripheral sensor 120a may be configured to acquire data characterizing the user 90's physiological state. For example, the sensor 120a may be an electrode.

[0071] Continuing to refer to Figure 2, the display 70 is operably coupled to the local data processing module 140 by a communication link 130, such as a wired connection or wireless connectivity, which may be mounted in various configurations, such as being fixedly attached to the frame 80, fixedly attached to a helmet or hat worn by the user, embedded in headphones, or otherwise removable by the user 90 (e.g., in a backpack configuration, a belt-mounted configuration). Similarly, the sensor 120a may be operably coupled to the local data processing module 140 by a communication link 120b, such as a wired connection or wireless connectivity. The local processing and data module 140 may include a hardware processor and digital memory such as non-volatile memory (e.g., flash memory or a hard disk drive), both of which may be used to assist in data processing, caching, and storage. The data includes a) data captured from sensors (image capture devices (such as cameras), microphones, inertial measurement units, accelerometers, compasses, GPS units, wireless devices, gyroscopes, and / or other sensors disclosed herein (e.g., operably coupled to frame 80 or otherwise attached to user 90)), and / or b) data acquired and / or processed using the remote processing module 150 and / or remote data repository 160 (including data related to virtual content) for passing to display 70 after processing or reading, as possible. The local processing and data module 140 may be operably coupled to the remote processing module 150 and the remote data repository 160 by communication links 170, 180, such as via wired or wireless communication links, so that these remote modules 150, 160 are operably coupled to each other and available as resources to the local processing and data module 140. In some embodiments, the local processing and data module 140 may include one or more of the following: an image acquisition device, a microphone, an inertial measurement unit, an accelerometer, a compass, a GPS unit, a wireless device, and / or a gyroscope.In some other embodiments, one or more of these sensors may be mounted on the frame 80, or they may be independent structures that communicate with the local processing and data module 140 via a wired or wireless communication path.

[0072] Continuing to refer to Figure 2, in some embodiments, the remote processing module 150 may comprise one or more processors configured to analyze and process data and / or image information. In some embodiments, the remote data repository 160 may comprise digital data storage facilities that may be available through the internet or other networking configurations in a “cloud” resource configuration. In some embodiments, the remote data repository 160 may comprise one or more remote servers that provide information, such as augmented reality content, for generating data for the local processing and data module 140 and / or the remote processing module 150. In some embodiments, all data is stored, and all calculations are performed within the local processing and data modules, enabling fully autonomous use from the remote modules.

[0073] Referring here to Figure 3, the perception of an image as "three-dimensional" or "3-D" can be achieved by providing slightly different presentations of the image to each eye of the viewer. Figure 3 illustrates a conventional display system for simulating a three-dimensional image with respect to a user. Two distinctly different images 190, 200, one for each eye 210, 220, are output to the user. Images 190, 200 are spaced only 230 units away from eyes 210, 220 along an optical axis or z-axis parallel to the viewer's line of sight. Images 190, 200 are flat, and eyes 210, 220 can focus on the image by taking a single perspective-accommodated state. Such a 3-D display system relies on the human visual system, combines images 190, 200, and provides a perception of depth and / or scale of the combined image.

[0074] However, it should be understood that the human visual system is more complex and providing a realistic perception of depth is more difficult. For example, many viewers of conventional "3-D" display systems may find such systems uncomfortable or may not perceive any sense of depth at all. While not limited by theory, it is thought that viewers of objects may perceive them as "three-dimensional" due to a combination of vergence and accommodation. The movement of vergence and divergence of two eyes relative to each other (i.e., the rotation of the eyes, where the pupils move toward or away from each other to converge the lines of sight of the eyes and fixate on an object) is closely related to the focusing (or "accommodation") of the eye's lens and pupil. Under normal conditions, changing the focus of the eye's lens, or adjusting the eye to shift focus from one object to another at a different distance, will automatically produce a consistent change in convergence-divergence movement up to the same distance, under the relationship known as the "accommodation-convergence-divergence reflex" and pupil dilation or constriction. Similarly, changes in convergence-divergence movement will, under normal conditions, induce a consistent change in accommodative lens shape and pupil size. As described herein, many stereoscopic or "3-D" display systems display a scene using slightly different presentations (and therefore slightly different images) to each eye so that a three-dimensional viewpoint is perceived by the human visual system. However, such systems, above all, simply provide different presentations of the scene, but are uncomfortable for many viewers because they act against the "accommodation-convergence-divergence reflex" when the eye views all image information in a single accommodated state. Display systems that provide better coordination between accommodation and convergence-divergence movement can form a more realistic and comfortable simulation of three-dimensional images.

[0075] Figure 4 illustrates aspects of an approach to simulating a three-dimensional image using multiple depth planes. Referring to Figure 4, objects at various distances from eyes 210, 220 on the z-axis are accommodated by eyes 210, 220 so that those objects are in focus. Eyes 210, 220 take on specific accommodated states to focus on objects at different distances along the z-axis. As a result, a specific accommodated state can be associated with one of the depth planes 240 having an associated focal length such that an object or part of an object in a particular depth plane is in focus when the eye is in the accommodated state for that depth plane. In some embodiments, the three-dimensional image may be simulated by providing different presentations of the image to each eye 210, 220, and by providing different presentations of the image corresponding to each of the depth planes. For the sake of clarity in the illustration, it should be understood that the fields of view of eyes 210, 220 may overlap, for example, as the distance along the z-axis increases, although they are shown as separate. Furthermore, for the sake of illustration, although shown as flat, it should be understood that the contour of the depth plane can be curved in physical space, for example, so that all features within the depth plane are in focus with the eye in a particular state of perspective adjustment.

[0076] The distance between an object and the eye 210 or 220 can also change the amount of light diverging from that object as visible to that eye. Figures 5A-5C illustrate the relationship between distance and ray divergence. The distance between the object and the eye 210 is expressed in the order of decreasing distances R1, R2, and R3. As shown in Figures 5A-5C, the rays diverge more as the distance to the object decreases. As the distance increases, the rays become more collimated. In other words, the light field generated by a point (object or part of an object) can be said to have a spherical wavefront curvature, which is a function of the distance the point is from the user's eye. The curvature increases with decreasing distance between the object and the eye 210. Consequently, in different depth planes, the ray divergence is also different, and the divergence increases with decreasing distance between the depth plane and the viewer's eye 210. Only a single eye 210 is illustrated in Figures 5A–5C and various other figures herein for the sake of illustration; however, it should be understood that the discussion relating to eye 210 may apply to both eyes 210 and 220 of the viewer.

[0077] While not limited by theory, the human eye is typically thought to be capable of interpreting a finite number of depth planes and providing depth perception. Consequently, a highly realistic simulation of perceived depth can be achieved by providing the eye with different presentations of images corresponding to each of these limited number of depth planes. These different presentations may be used to provide depth cues to the user based on the eye's accommodation required to focus on different image features for scenes located on different depth planes, and / or based on the observation of different image features on different depth planes that are out of focus.

[0078] Figure 6 illustrates an embodiment of a waveguide stack for outputting image information to a user. The display system 250 includes a waveguide stack or stacked waveguide assembly 260, which may be used to provide three-dimensional perception to the eye / brain using a plurality of waveguides 270, 280, 290, 300, 310. In some embodiments, the display system 250 is the system 60 in Figure 2, and Figure 6 schematically shows some parts of that system 60 in more detail. For example, the waveguide assembly 260 may be part of the display 70 in Figure 2. It should be understood that the display system 250 may be considered a light field display in some embodiments.

[0079] In some embodiments, a single waveguide may be configured to output light with a set amount of wavefront divergence corresponding to one or a limited number of depth planes, and / or the waveguide may be configured to output light with a limited range of wavelengths. As a result, in some embodiments, multiple waveguides or stacks of waveguides may be used to provide different amounts of wavefront divergence for different depth planes, and / or to output light with different ranges of wavelengths. It should be understood that, as used herein, depth planes can follow the contours of flat or curved surfaces. In some embodiments, advantageously and for convenience, depth planes can follow the contours of flat surfaces.

[0080] Continuing with Figure 6, the waveguide assembly 260 may also include several features 320, 330, 340, and 350 between the waveguides. In some embodiments, features 320, 330, 340, and 350 may be one or more lenses. Waveguides 270, 280, 290, 300, and 310 and / or several lenses 320, 330, 340, and 350 may be configured to transmit image information to the eye using various levels of wavefront curvature or ray divergence. Each waveguide level may be associated with a specific depth plane and may be configured to output image information corresponding to that depth plane. Image input devices 360, 370, 380, 390, and 400 may function as light sources for the waveguides and may be used to input image information into waveguides 270, 280, 290, 300, and 310, and each may be configured to disperse incident light across each individual waveguide for output toward the eye 210, as described herein. The light exits from the output surfaces 410, 420, 430, 440, and 450 of image input devices 360, 370, 380, 390, and 400 and is input into the corresponding input surfaces 460, 470, 480, 490, and 500 of waveguides 270, 280, 290, 300, and 310. In some embodiments, the input surfaces 460, 470, 480, 490, and 500 may each be the edge of the corresponding waveguide or a portion of the main surface of the corresponding waveguide (i.e., one of the waveguide surfaces that directly faces the world 510 or the viewer's eye 210). It should be understood that the main surfaces of the waveguide correspond to the relatively large surface area of ​​the waveguide, between which the waveguide thickness extends. In some embodiments, a single beam of light (e.g., a collimated beam) may be injected into each waveguide to output a whole field of cloned collimated beams, which are directed toward the eye 210 at a specific angle (and divergence) corresponding to the depth plane associated with the particular waveguide. In some embodiments, one of the image input devices 360, 370, 380, 390, and 400 may be associated with a plurality (e.g., three) of waveguides 270, 280, 290, 300, and 310, into which light may be injected.

[0081] In some embodiments, the image input devices 360, 370, 380, 390, and 400 are discrete displays, each generating image information for input into the corresponding waveguides 270, 280, 290, 300, and 310, respectively. In some other embodiments, the image input devices 360, 370, 380, 390, and 400 are output terminals of a single multiplexed display, which can transmit image information to each of the image input devices 360, 370, 380, 390, and 400 via, for example, one or more optical conduits (such as optical fiber cables). It should be understood that the image information provided by the image input devices 360, 370, 380, 390, and 400 may include light of different wavelengths or colors (e.g., different primary colors, as discussed herein).

[0082] In some embodiments, the light introduced into waveguides 270, 280, 290, 300, and 310 is provided by an optical projector system 520, which comprises an optical module 530, which may include an optical emitter such as a light-emitting diode (LED). The light from the optical module 530 may be directed and modified by an optical modulator 540, such as a spatial light modulator, via a beam splitter 550. The optical modulator 540 may be configured to change the perceived intensity of the light introduced into waveguides 270, 280, 290, 300, and 310, thereby encoding the light with image information. Embodiments of the spatial light modulator include liquid crystal displays (LCDs), including liquid crystal on silicon (LCOS) displays. Image input devices 360, 370, 380, 390, and 400 are graphically illustrated, and it should be understood that in some embodiments, these image input devices may represent different optical paths and locations within a common projection system, configured to output light into associated waveguides 270, 280, 290, 300, and 310. In some embodiments, the waveguides of waveguide assembly 260 may function as ideal lenses, relaying the light input into the waveguides to the user's eye. In this concept, the object may be a spatial light modulator 540, and the image may be an image on the depth plane.

[0083] In some embodiments, the display system 250 may be a scanning fiber display comprising one or more scanning fibers configured to project light in various patterns (e.g., raster scanning, helical scanning, Lissajous patterns, etc.) into one or more waveguides 270, 280, 290, 300, 310, and ultimately to the viewer's eye 210. In some embodiments, the illustrated image input devices 360, 370, 380, 390, 400 may schematically represent a single scanning fiber or a bundle of scanning fibers configured to input light into one or more waveguides 270, 280, 290, 300, 310. In some other embodiments, the illustrated image input devices 360, 370, 380, 390, 400 may schematically represent a plurality of scanning fibers or a plurality of bundles of scanning fibers, each configured to input light into one of the associated waveguides 270, 280, 290, 300, 310. It should be understood that one or more optical fibers may be configured to transmit light from the optical module 530 to one or more waveguides 270, 280, 290, 300, 310. It should be understood that one or more intervening optical structures may be provided between one or more scanning fibers and one or more waveguides 270, 280, 290, 300, 310, for example, to redirect light emitted from the scanning fibers into one or more waveguides 270, 280, 290, 300, 310.

[0084] The controller 560 controls the operation of one or more of the stacked waveguide assemblies 260, including the operation of the image input devices 360, 370, 380, 390, 400, the light source 530, and the optical module 540. In some embodiments, the controller 560 is part of the local data processing module 140. The controller 560 includes programming (e.g., instructions in a non-transient medium) to coordinate the timing and provisioning of image information to the waveguides 270, 280, 290, 300, 310, for example, according to any of the various schemes disclosed herein. In some embodiments, the controller may be a single integrated device or a distributed system connected by wired or wireless communication channels. In some embodiments, the controller 560 may be part of the processing module 140 or 150 (Figure 2).

[0085] Continuing with Figure 6, the waveguides 270, 280, 290, 300, and 310 may be configured to propagate light within each individual waveguide by total internal reflection (TIR). Each waveguide 270, 280, 290, 300, and 310 may be planar or have another shape (e.g., curved), with a main upper surface and a main bottom surface and edges extending between their main upper and main bottom surfaces. In the illustrated configuration, each waveguide 270, 280, 290, 300, and 310 may include external coupling optical elements 570, 580, 590, 600, and 610, respectively, configured to extract light from the waveguide by redirecting the light propagating within each individual waveguide and outputting image information to the eye 210. The extracted light may also be referred to as externally coupled light, and the external coupling optical elements may also be referred to as light extraction optical elements. The extracted beam of light can be output by the waveguide at the point where light propagating within the waveguide strikes the light extraction optical element. The external coupling optical elements 570, 580, 590, 600, 610 may be gratings, for example, including diffractive optical features as further discussed herein. For ease of explanation and clarity of the drawings, they are shown positioned on the bottom main surfaces of the waveguides 270, 280, 290, 300, 310, but in some embodiments, the external coupling optical elements 570, 580, 590, 600, 610 may be positioned on the upper main surfaces and / or the bottom main surfaces, and / or directly within the volume of the waveguides 270, 280, 290, 300, 310, as further discussed herein. In some embodiments, the external coupling optical elements 570, 580, 590, 600, 610 may be mounted on a transparent substrate and formed within a layer of material that forms the waveguides 270, 280, 290, 300, 310. In some other embodiments, the waveguides 270, 280, 290, 300, 310 may be monolithic components of the material, and the external coupling optical elements 570, 580, 590, 600, 610 may be formed on and / or inside the surface of that component of the material.

[0086] Continuing with reference to Figure 6, as discussed herein, each waveguide 270, 280, 290, 300, 310 is configured to emit light and form an image corresponding to a specific depth plane. For example, the waveguide 270 closest to the eye may be configured to deliver collimated light (injected into such waveguide 270) to the eye 210. The collimated light may represent the optical infinity focal plane. The next upper waveguide 280 may be configured to emit collimated light that passes through a first lens 350 (e.g., a negative lens) before reaching the eye 210. Such a first lens 350 may generate some convex wavefront curvature so that the eye / brain interprets the light originating from the next upper waveguide 280 as originating from a first focal plane closer inward from optical infinity toward the eye 210. Similarly, the third upper waveguide 290 passes its output light through both the first lens 350 and the second lens 340 before reaching the eye 210. The combined refractive power of the first lens 350 and the second lens 340 may be configured to generate a different, gradually increasing wavefront curvature so that the eye / brain interprets the light originating from the third waveguide 290 as originating from a second focal plane that is closer inward toward the person from optical infinity than the light originating from the next upper waveguide 280.

[0087] Other waveguide layers 300, 310 and lenses 330, 320 are configured similarly, with the highest waveguide 310 in the stack emitting its output through all the lenses between it and the eye for a convergent focusing force representing the focal plane closest to the person. When viewing / interpreting light originating from the other side world 510 of the stacked waveguide assembly 260, a compensating lens layer 620 may be positioned on top of the stack to compensate for the convergent forces of the lower lens stacks 320, 330, 340, 350 to compensate for the stack of lenses 320, 330, 340, 350. Such a configuration provides the same number of perceived focal planes as there are available waveguide / lens pairs. Both the external coupling optical elements of the waveguides and the focusing sides of the lenses may be static (i.e., not dynamic or electroactive). In some alternative embodiments, one or both may be dynamic using electroactive features.

[0088] In some embodiments, two or more of the waveguides 270, 280, 290, 300, and 310 may have the same associated depth plane. For example, multiple waveguides 270, 280, 290, 300, and 310 may be configured to output images set in the same depth plane, or multiple subsets of waveguides 270, 280, 290, 300, and 310 may be configured to output images set in the same multiple depth planes, with one set for each depth plane. This may offer the advantage of forming tiled images that provide an extended field of view in those depth planes.

[0089] Continuing with Figure 6, the external coupling optical elements 570, 580, 590, 600, and 610 may be configured to redirect light from their respective waveguides for specific depth planes associated with the waveguides and to output the light with an appropriate amount of divergence or collimation. As a result, waveguides with different associated depth planes may have different configurations of the external coupling optical elements 570, 580, 590, 600, and 610, which will output light with different amounts of divergence depending on the associated depth plane. In some embodiments, the light extraction optical elements 570, 580, 590, 600, and 610 may be volume features or surface features, which may be configured to output light at specific angles. For example, the light extraction optical elements 570, 580, 590, 600, and 610 may be stereoscopic holograms, surface holograms, and / or diffraction gratings. In some embodiments, features 320, 330, 340, and 350 may not be lenses. Rather, they may simply be spacers (e.g., structures for forming cladding layers and / or voids).

[0090] In some embodiments, the external coupling optical elements 570, 580, 590, 600, 610 are diffraction features or “diffractive optical elements” (also referred to herein as “DOEs”) that form a diffraction pattern. Preferably, the DOEs have sufficiently low diffraction efficiency so that only a portion of the beam light is deflected toward the eye 210 at each intersection of the DOEs, while the remainder continues to travel through the waveguide via the TIR. The light carrying the image information is therefore split into several associated emission beams that exit the waveguide at various locations, resulting in a very uniform pattern of emission toward the eye 210 with respect to this particular collimated beam bouncing within the waveguide.

[0091] In some embodiments, one or more DOEs may be switchable between an "on" state in which they actively diffract and an "off" state in which they do not significantly diffract. For example, a switchable DOE may comprise a layer of polymer-dispersed liquid crystal, in which microdroplets have a diffraction pattern in the host medium, and the refractive index of the microdroplets may be switched to substantially match the refractive index of the host material (in which case the pattern does not significantly diffract incident light), or the microdroplets may be switched to a refractive index that does not match that of the host medium (in which case the pattern actively diffracts incident light).

[0092] In some embodiments, a camera assembly 630 (e.g., a digital camera including visible light and infrared light cameras) may be provided to capture images of the eye 210 and / or the tissue surrounding the eye 210, for example, to detect user input and / or monitor the user's physiological state. As used herein, the camera may be any image-capturing device. In some embodiments, the camera assembly 630 may include the image-capturing device and a light source, the light source which projects light (e.g., infrared light) onto the eye, which is then reflected by the eye and can be detected by the image-capturing device. In some embodiments, the camera assembly 630 may be mounted on a frame 80 (Figure 2) and may be telecommunicated with processing modules 140 and / or 150 that can process image information from the camera assembly 630. In some embodiments, one camera assembly 630 may be used for each eye, and each eye may be monitored separately.

[0093] Referring here to Figure 7, an embodiment of an outgoing beam output by a waveguide is shown. Although one waveguide is illustrated, other waveguides within the waveguide assembly 260 (Figure 6) may function similarly, and it should be understood that the waveguide assembly 260 includes multiple waveguides. Light 640 is introduced into the waveguide 270 at the input surface 460 of the waveguide 270 and propagates through the waveguide 270 by TIR. At the point where the light 640 collides on the DOE 570, a portion of the light exits the waveguide as an outgoing beam 650. The outgoing beam 650 is illustrated as substantially parallel, but may be redirected to propagate to the eye 210 at a certain angle (e.g., forming a divergent outgoing beam), depending on the depth plane associated with the waveguide 270, as discussed herein. It should be understood that a nearly parallel emitted beam may represent a waveguide with an external coupling optical element that externally couples the light to form an image that appears to be set in the depth plane at a distance from the eye 210 (e.g., optical infinity). Other waveguides or other sets of external coupling optical elements may output a more divergent emitted beam pattern, which would require the eye 210 to adjust to a closer distance and focus on the retina, and would be interpreted by the brain as light from a distance closer to the eye 210 than optical infinity.

[0094] In some embodiments, a full-color image may be formed in each depth plane by overlaying images in primary colors, for example, three or more primary colors. Figure 8 illustrates an embodiment of a stacked waveguide assembly, where each depth plane includes an image formed using several different primary colors. The illustrated embodiment shows depth planes 240a–240f, but more or fewer depths may also be considered. Each depth plane may have three or more associated primary color images, including a first image of a first color G, a second image of a second color R, and a third image of a third color B. Different depth planes are indicated in the figure by different numbers relating to diopters following the letters G, R, and B. As merely an embodiment, the numbers following each of these letters indicate diopters (1 / m), i.e., the inverse distance of the depth plane from the viewer, and each box in the figure represents an individual primary color image. In some embodiments, the exact location of the depth planes relating to different primary colors may vary to account for differences in the focusing of light of different wavelengths on the eye. For example, different primary color images with respect to a given depth plane may be placed on depth planes corresponding to different distances from the user. Such an arrangement may increase visual acuity and user comfort and / or reduce chromatic aberration.

[0095] In some embodiments, each primary color light may be output by a single dedicated waveguide, and as a result, each depth plane may have multiple waveguides associated with it. In such embodiments, each box in the figure, including the letters G, R, or B, can be understood to represent an individual waveguide, and three waveguides may be provided for each depth plane, and three primary color images are provided for each depth plane. The waveguides associated with each depth plane are shown adjacent to each other in this drawing for ease of explanation, but it should be understood that in a physical device, all waveguides may be arranged in a stack with one waveguide per level. In some other embodiments, multiple primary colors may be output by the same waveguide, for example, so that only a single waveguide may be provided for each depth plane.

[0096] Continuing to refer to Figure 8, in some embodiments, G is green, R is red, and B is blue. In some other embodiments, other colors associated with other wavelengths of light, including magenta and cyan, may be used in addition to or replace one or more of red, green, or blue.

[0097] Throughout this disclosure, any reference to a given color of light should be understood as encompassing one or more wavelengths of light within a range of wavelengths that are perceived by the viewer as that given color. For example, red light may include one or more wavelengths of light in the range of approximately 620–780 nm, green light may include one or more wavelengths of light in the range of approximately 492–577 nm, and blue light may include one or more wavelengths of light in the range of approximately 435–493 nm.

[0098] In some embodiments, the light source 530 (Figure 6) may be configured to emit light of one or more wavelengths outside the viewer's visual perception range, such as infrared and / or ultraviolet wavelengths. In addition, internal coupling, external coupling, and other light redirection structures of the waveguide of the display 250 may be configured to direct and emit this light from the display toward the user's eye 210, for example, for imaging and / or user stimulation applications.

[0099] Referring here to Figure 9A, in some embodiments, light impacting a waveguide may need to be redirected to internally couple that light into the waveguide. Internal coupling optical elements may be used to redirect and internally couple the light into its corresponding waveguide. Figure 9A illustrates a cross-sectional side view of an embodiment of multiple or set 660 stacked waveguides, each containing an internal coupling optical element. Each waveguide may be configured to output light of one or more different wavelengths or one or more different wavelength ranges. Stack 660 may correspond to stack 260 (Figure 6), and the illustrated waveguides of stack 660 may correspond to some of the multiple waveguides 270, 280, 290, 300, 310, but it should be understood that light from one or more of the image input devices 360, 370, 380, 390, 400 is input into the waveguide from a position where the light is required to be redirected for internal coupling.

[0100] The illustrated set of stacked waveguides 660 includes waveguides 670, 680, and 690. Each waveguide includes associated internal coupling optical elements (which may also be referred to as optical input areas on the waveguide), for example, internal coupling optical element 700 is located on the main surface of waveguide 670 (e.g., the upper main surface), internal coupling optical element 710 is located on the main surface of waveguide 680 (e.g., the upper main surface), and internal coupling optical element 720 is located on the main surface of waveguide 690 (e.g., the upper main surface). In some embodiments, one or more of the internal coupling optical elements 700, 710, and 720 may be located on the bottom main surfaces of individual waveguides 670, 680, and 690 (in particular, one or more internal coupling optical elements are reflective deflection optical elements). As illustrated, the internally coupled optical elements 700, 710, and 720 may be located on the upper main surface of their respective waveguides 670, 680, and 690 (or on the upper part of the following lower waveguide), and in particular, these internally coupled optical elements are transmissive deflection optical elements. In some embodiments, the internally coupled optical elements 700, 710, and 720 may be located within the body of the respective waveguides 670, 680, and 690. In some embodiments, as discussed herein, the internally coupled optical elements 700, 710, and 720 are wavelength-selective, selectively redirecting one or more wavelengths of light while transmitting other wavelengths of light. Although illustrated on one side or corner of their respective waveguides 670, 680, and 690, it should be understood that in some embodiments, the internally coupled optical elements 700, 710, and 720 may be located within other areas of their respective waveguides 670, 680, and 690.

[0101] As illustrated, the internally coupled optical elements 700, 710, and 720 may be offset laterally from one another. In some embodiments, each internally coupled optical element may be offset so that its light does not pass through another internally coupled optical element to receive light. For example, each internally coupled optical element 700, 710, and 720 may be configured to receive light from different image input devices 360, 370, 380, 390, and 400, as shown in Figure 6, and may be separated from other internally coupled optical elements 700, 710, and 720 (e.g., separated laterally) so that it does not substantially receive light from the other internally coupled optical elements 700, 710, and 720.

[0102] Each waveguide also includes associated optical dispersion elements, for example, optical dispersion element 730 is located on the main surface (e.g., upper main surface) of waveguide 670, optical dispersion element 740 is located on the main surface (e.g., upper main surface) of waveguide 680, and optical dispersion element 750 is located on the main surface (e.g., upper main surface) of waveguide 690. In some other embodiments, optical dispersion elements 730, 740, and 750 may be located on the bottom main surfaces of the associated waveguides 670, 680, and 690, respectively. In some other embodiments, the optical dispersion elements 730, 740, and 750 may be positioned on both the upper and lower main surfaces of the associated waveguides 670, 680, and 690, respectively, or the optical dispersion elements 730, 740, and 750 may be positioned on different upper and lower main surfaces within different associated waveguides 670, 680, and 690, respectively.

[0103] Waveguides 670, 680, and 690 may be separated and isolated by, for example, gaseous, liquid, and / or solid layers of material. For example, as shown, layer 760a may separate waveguides 670 and 680, and layer 760b may separate waveguides 680 and 690. In some embodiments, layers 760a and 760b are formed from a low refractive index material (i.e., a material having a lower refractive index than the material forming the immediate vicinity of waveguides 670, 680, and 690). Preferably, the refractive index of the material forming layers 760a and 760b is 0.05 or greater, or 0.10 or less, compared to the refractive index of the material forming waveguides 670, 680, and 690. Advantageously, lower refractive index layers 760a, 760b may function as cladding layers that facilitate total internal reflection (TIR) ​​of light through waveguides 670, 680, 690 (e.g., TIR between the upper and bottom primary surfaces of each waveguide). In some embodiments, layers 760a, 760b are formed from air. It should be understood that the upper and bottom of the illustrated set of waveguides 660 may also include immediate cladding layers, although these are not shown.

[0104] Preferably, to facilitate manufacturing and other considerations, the materials forming waveguides 670, 680, and 690 are similar or identical, and the materials forming layers 760a and 760b are similar or identical. In some embodiments, the materials forming waveguides 670, 680, and 690 may differ between one or more waveguides, and / or the materials forming layers 760a and 760b may differ, while still maintaining the various refractive index relationships described above.

[0105] Continuing to refer to Figure 9A, rays 770, 780, and 790 are incident on the waveguide set 660. It should be understood that rays 770, 780, and 790 may also be introduced into waveguides 670, 680, and 690 by one or more image input devices 360, 370, 380, 390, and 400 (Figure 6).

[0106] In some embodiments, the rays 770, 780, and 790 may have different properties, such as different wavelengths or different wavelength ranges, which may correspond to different colors. The internal coupling optical elements 700, 710, and 720 each deflect the incident light so that the light propagates through one of the waveguides 670, 680, and 690 by TIR. In some embodiments, the internal coupling optical elements 700, 710, and 720 each selectively deflect one or more specific wavelengths of light while allowing other wavelengths to pass through the lower waveguide and associated internal coupling optical elements.

[0107] For example, the internally coupled optical element 700 may be configured to selectively deflect a ray 770 having a first wavelength or wavelength range while transmitting rays 1242 and 1244 having different second and third wavelengths or wavelength ranges, respectively. The transmitted ray 780 collides with an internally coupled optical element 710 configured to selectively deflect light of the second wavelength or wavelength range, and is deflected by it. The ray 790 is deflected by an internally coupled optical element 720 configured to selectively deflect light of the third wavelength or wavelength range.

[0108] Continuing with Figure 9A, the deflected rays 770, 780, and 790 are deflected so that they propagate through the corresponding waveguides 670, 680, and 690. That is, the internal coupling optical elements 700, 710, and 720 of each waveguide deflect the light into its corresponding waveguide 670, 680, and 690, and internally couple the light into the corresponding waveguide. The rays 770, 780, and 790 are deflected at an angle that causes the light to propagate through the individual waveguides 670, 680, and 690 by TIR. The rays 770, 780, and 790 propagate through the individual waveguides 670, 680, and 690 by TIR until they collide with the corresponding optical dispersion elements 730, 740, and 750 of the waveguide.

[0109] Referring now to Figure 9B, a perspective view of an embodiment of the multiple stacked waveguides shown in Figure 9A is illustrated. As previously mentioned, the internally coupled rays 770, 780, and 790 are deflected by the internally coupled optical elements 700, 710, and 720, respectively, and then propagate by TIR within waveguides 670, 680, and 690, respectively. The rays 770, 780, and 790 then collide with the optical dispersion elements 730, 740, and 750, respectively. The optical dispersion elements 730, 740, and 750 deflect the rays 770, 780, and 790 so that they propagate toward the externally coupled optical elements 800, 810, and 820, respectively.

[0110] In some embodiments, the light dispersion elements 730, 740, and 750 are orthogonal pupil expanders (OPEs). In some embodiments, the OPEs deflect or disperse light to the external coupling optical elements 800, 810, and 820, and in some embodiments, they can also increase the beam or spot size of the light as it propagates to the external coupling optical elements. In some embodiments, the light dispersion elements 730, 740, and 750 may be omitted, and the internal coupling optical elements 700, 710, and 720 may be configured to deflect light directly to the external coupling optical elements 800, 810, and 820. For example, referring to Figure 9A, the light dispersion elements 730, 740, and 750 may be replaced by the external coupling optical elements 800, 810, and 820, respectively. In some embodiments, the external coupling optical elements 800, 810, 820 are exit pupils (EPs) or exit pupil expanders (EPEs) that direct light towards the viewer's eye 210 (Figure 7). It should be understood that the OPEs may be configured to increase the dimensions of the eyebox along at least one axis, and the EPEs may increase the eyebox along axes intersecting (e.g., orthogonal to) the axes of the OPEs. For example, each OPE may be configured to redirect a portion of the light impacting the OPE to an EPE in the same waveguide, while allowing the rest of the light to continue propagating along the waveguide. In response to the impact on the OPE, another portion of the remaining light is again redirected to the EPE, and the rest of that portion continues to propagate further along the waveguide, etc. Similarly, in response to the impact on the EPE, a portion of the impacting light is directed out of the waveguide towards the user, and the rest of that light continues to propagate through the waveguide until it impacts the EP again, at which point another portion of the impacting light is directed out of the waveguide, and so on. As a result, the internally coupled single beam of light is "duplicated" each time a portion of its light is redirected by the OPE or EPE, thereby forming a cloned beam field of light, as shown in Figure 6. In some embodiments, the OPE and / or EPE may be configured to modify the size of the beam of light.

[0111] Therefore, referring to Figures 9A and 9B, in some embodiments, the set of waveguides 660 includes, for each primary color, waveguides 670, 680, 690, internally coupled optical elements 700, 710, 720, optical dispersion elements (e.g., OPE) 730, 740, 750, and externally coupled optical elements (e.g., EP) 800, 810, 820. Waveguides 670, 680, 690 may be stacked with air gaps / cladding layers between each one. The internally coupled optical elements 700, 710, 720 redirect or deflect the incident light into their waveguides (using different internally coupled optical elements that receive light of different wavelengths). The light then propagates within the individual waveguides 670, 680, 690 at angles that will result in TIR. In the embodiment shown, a ray 770 (e.g., blue light) is deflected by the first internal coupling optical element 700 in the manner described above, and then continues to bounce along the waveguide, interacting with the optical dispersion element (e.g., OPE) 730 and then the external coupling optical element (e.g., EP) 800. Rays 780 and 790 (e.g., green light and red light, respectively) pass through waveguide 670, with ray 780 incident on internal coupling optical element 710 and deflected thereby. Ray 780 will then bounce along waveguide 680 via TIR, proceeding to its optical dispersion element (e.g., OPE) 740 and then the external coupling optical element (e.g., EP) 810. Finally, ray 790 (e.g., red light) passes through waveguide 690 and collides with the optical internal coupling optical element 720 of waveguide 690. The internal optical coupling element 720 deflects the ray 790 so that it propagates by TIR to the optical dispersion element (e.g., OPE) 750, and then by TIR to the external coupling optical element (e.g., EP) 820. The external coupling optical element 820 then finally externally couples the ray 790 to the viewer, who also receives externally coupled light from other waveguides 670, 680.

[0112] Figure 9C illustrates upper and lower plan views of embodiments of the multiple stacked waveguides shown in Figures 9A and 9B. As shown, waveguides 670, 680, and 690 may be vertically aligned with their associated optical dispersion elements 730, 740, and 750 and associated external coupling optical elements 800, 810, and 820. However, as discussed herein, the internal coupling optical elements 700, 710, and 720 are not vertically aligned. Rather, the internal coupling optical elements are preferably non-overlapping (e.g., laterally spaced, as seen in the upper and lower figures). As further discussed herein, this non-overlapping spatial arrangement facilitates the ingress of light from different resources into different waveguides on a one-to-one basis, thereby enabling a specific light source to be uniquely coupled to a specific waveguide. In some embodiments, arrangements including non-overlapping, spatially separated internal coupling optical elements may be referred to as pupil-shifting systems, where the internal coupling optical elements in these arrangements may correspond to subpupils.

[0113] Referring here to Figure 10, a cross-sectional side view of an exemplary optical structure 1400 is shown, comprising a metasurface 1418 formed by a plurality of nanostructures 1420, and an anti-reflective coating 1430 directly disposed over the nanostructures 1420, according to several embodiments. The metasurface 1418 and the anti-reflective coating 1430 may be disposed on an optically transparent substrate 1410. In some embodiments, as shown, the anti-reflective coating 1430 fills the space between the nanostructures 1420 such that no air or other material is present between the nanostructures 1420 and the anti-reflective coating 1430, at least over a large portion of the extent of the metasurface 1418. The anti-reflective coating 1430 may be optically transparent or substantially transparent to light.

[0114] In some embodiments, the anti-reflective coating 1430 has a substantially flat upper surface 1430a. The anti-reflective coating 1430 can function as a planarizing layer for the underlying non-uniform topology of the nanostructure 1420. In some embodiments, the upper surface 1430a of the anti-reflective coating 1430 may be substantially parallel to the substantially horizontal plane defined by the upper surface 1420a of the nanostructure 1420.

[0115] The thickness 1422 of the anti-reflective coating 1430 can be defined as the distance from the top surface 1420a of the nanostructure 1420 to the top surface of the anti-reflective coating 1430. In some embodiments, the thickness 1422 may be in the range of about 10 nm to about 2 microns. In some embodiments, the thickness 1422 may be in the range of about 20 nm to about 1 micron. In some embodiments, the thickness 1422 may be in the range of about 25 nm to about 500 nm, about 30 nm to about 250 nm, about 40 nm to about 100 nm, and about 45 nm to about 55 nm. In some embodiments, the thickness 1422 may be about 50 nm. In some embodiments, the thickness 1422 may be greater than the height of the nanostructure 1420, where the height of the nanostructure 1420 is the distance from the bottom of the nanostructure 1420 to the top surface 1420a.

[0116] Although not constrained by theory, the anti-reflective coating 1430 may provide impedance matching between the upper medium (e.g., air) and one or both of the nanostructure 1420 and / or the substrate 1410, thereby reducing the occurrence of reflections. Furthermore, the anti-reflective coating 1430 may induce destructive interference between light reflected from the upper surface 1430a and the lower surface 1430b of the anti-reflective coating and / or light backscattered from the surface of the nanostructure 1420 and / or the surface of the substrate 1410. This interference is thought to lead to a reduction or elimination of the amount of light perceived as being reflected from the optical structure 1400. In some embodiments, the ability of the anti-reflective coating 1430 to reduce or eliminate light reflected from the optical structure 1400 may depend on the thickness of the anti-reflective coating 1430 and the wavelength of light impacting the anti-reflective coating 1430. Preferably, the thickness 1422 is selected for the wavelength of light for which the refractive index and dimensions of the nanostructure 1420 are desired in order to provide destructive interference, as described above.

[0117] The anti-reflective coating 1430 may include an optically transparent material having a refractive index lower than the refractive index 1420 of the nanostructure, but higher than the refractive index of the medium or material that directly covers the anti-reflective coating 1430 and forms an interface with it. For example, the medium that covers the anti-reflective coating 1430 and forms an interface with it may be air. In some embodiments, the anti-reflective coating 1430 may have a refractive index of about 1.2 to about 2.0, about 1.2 to about 1.7, about 1.3 to about 1.6, or about 1.4 to about 1.5. In some embodiments, the anti-reflective coating 1430 may have a refractive index of about 1.45. In some embodiments, the refractive index of the anti-reflective coating 1430 may also be lower than the refractive index of the substrate 1410. In some embodiments, it should be understood that the lower refractive index of the anti-reflective coating 1430 compared to the substrate 1410 promotes TIR of light within the substrate 1410, while the higher refractive index of the anti-reflective coating 1430 compared to the medium covering the coating 1430 promotes the passage of light to the metasurface 1418 for internal bonding within the substrate 1410.

[0118] Continuing to refer to Figure 10, in order to reduce potential reflections caused by the interface between additional materials, the anti-reflective coating 1430 may follow the contour of the nanostructure 1420 such that substantially no air or other material is present between the nanostructure 1420 and the anti-reflective coating 1430 over all or substantially all of the area where the metasurface is located. In some embodiments, as shown, the anti-reflective coating 1430 is placed directly on the optical structure 1400 such that the anti-reflective coating 1430 encapsulates the nanostructure 1420 above the surface of the substrate 1410.

[0119] As discussed herein, the anti-reflective coating 1430 preferably comprises an optically transparent material. For example, the optically transparent material may be an optically transparent organic material such as a transparent polymer. In some embodiments, the anti-reflective coating 1430 may comprise a resist material such as a photoresist material. Non-limiting embodiments of the photoresist include positive and negative resists. In some embodiments, the anti-reflective coating 1430 may comprise a UV photoresist, an EUV photoresist, or a DUV photoresist.

[0120] It should be understood that the anti-reflective coating 1430 may be formed on the nanostructure 1420 by various deposition processes. In some embodiments, the anti-reflective coating 1430 may be applied to the nanostructure 1420 as a liquid, thereby forming the anti-reflective coating 1430. For example, the anti-reflective coating 1430 may be deposited on the nanostructure 1420 as a liquid by spin coating. In some embodiments, the anti-reflective coating 1430 may be deposited on the nanostructure 1420 using a vapor deposition process, such as chemical vapor deposition (CVD) and atomic layer deposition (ALD), using a vapor-phase precursor.

[0121] In some embodiments, the anti-reflective coating 1430 can reduce the amount of incident light reflected by the optical structure 1400 operating in transmission mode by about 50%, 75%, 85%, 90%, 95%, 99%, or more, compared to a substantially similar optical structure without the anti-reflective coating 1430. In some embodiments, the anti-reflective coating can achieve such reduction of reflected light over a range of incident angles of -10° to 10°, -20° to 20°, -30° to 30°, -40° to 40°, -50° to 50°, or wider.

[0122] A metasurface 1418 comprising multiple nanostructures 1420 may be configured to manipulate light for purposes such as beam steering, wavefront shaping, wavelength and / or polarization separation, and combinations of different wavelengths and / or polarizations. Preferably, the light is visible light having wavelengths in the range of 350 nm to 800 nm. In some embodiments, the metasurface on which an anti-reflective coating is placed may comprise nanostructures having a size and periodicity smaller than the wavelength of visible light. In some embodiments, it should be understood that the metasurface 1418 selectively redirects some wavelengths of light while allowing other wavelengths of light to pass through without being redirected. While such properties are typically engineered using structures at the micron scale (e.g., photonic crystalline fibers or distributed Bragg reflectors), various embodiments herein involve nanoscale geometry (e.g., smaller scales of 1 / 10 to 1 / 100) to provide selective redirection of light within the visible portion of the electromagnetic spectrum.

[0123] As an example, the metasurface 1418 may operate in a transmission mode, where light is incident on the metasurface from a first side of the metasurface 1418, propagates through the body of the metasurface 1418, and then propagates away from the metasurface 1418 on the opposite side of the metasurface 1418. The light propagates away from the metasurface 1418 in a direction different from the direction of incidence of the light on the first side. In some embodiments, the anti-reflective coating 1430 may reduce or eliminate the amount of light reflected from the metasurface 1418 compared to the metasurface 1418 without the anti-reflective coating 1430. In some embodiments, the anti-reflective coating 1430 may not substantially reduce, or have no effect on, the amount of light propagating through and away from the metasurface 1418 compared to the metasurface 1418 without the anti-reflective coating 1430.

[0124] In some embodiments, a substrate 1410 supporting a metasurface 1418 on which an anti-reflective coating 1430 is placed may be a waveguide, and a direct-view display device or eyepiece display device may be formed using a waveguide configured to receive input image information and generate an output image in the form of light encoded with the image information based on the input image information. These devices are wearable and, in some embodiments, may constitute eyewear, or may be the display devices described herein with respect to Figures 1-9C. In some embodiments, the input image information received by the waveguide may be encoded in a multiplexed light stream of different wavelengths (e.g., red, green, and blue light) that is internally coupled within one or more waveguides. The internally coupled light may propagate through the waveguide due to total internal reflection. The internally coupled light may be externally coupled (or output) from the waveguide by one or more externally coupled optical elements, as described above with respect to Figures 9A-9C.

[0125] In some embodiments, the metasurface 1418, conformally arranged with the anti-reflective coating 1430, may be an internal coupling optical element, an external coupling optical element, and / or an optical dispersion element of the waveguide. The compactness and planarity of the metasurface 1418 and the anti-reflective coating 1430 enable compact waveguides and stacks of compact waveguides where multiple waveguides form a stack. In addition, the metasurface 1418 may be configured to provide high precision, which can provide high image quality when internally coupling and / or externally coupling light. For example, high selectivity can reduce channel crosstalk in configurations where a full-color image is formed by simultaneously outputting light of different colors or wavelengths, while the anti-reflective coating 1430 can reduce afterimages.

[0126] It should be understood that the nanostructures 1420 may have various sizes and be arranged in various orientations relative to each other for various applications to form a metasurface 1418. For example, as discussed herein, the nanostructures 1420 may be arranged to form a diffraction grating, such as an asymmetric or asymmetric diffraction grating. In some embodiments, the metasurface 1418 may be formed from nanostructures 1420 that are multi-level or multi-stage. For example, the nanostructures 1420 may be relatively wide on a first level and relatively narrow on a second level. In some embodiments, the metasurface 1418 may be formed on a single level and have a substantially constant width on that level. Examples of metasurfaces that can be used as metasurface 1418 are U.S. Patent Application No. 15 / 342,033 (Patent Attorney No. MLEAP.027A) filed on 2 November 2016, U.S. Provisional Application No. 62 / 333,067 (Patent Attorney No. MLEAP.066PR) filed on 6 May 2016, titled "DIFFRACTION GRATINGS FORMED BY METASURFACES HAVING DIFFERENTLY ORIENTED NANOBEAMS", U.S. Provisional Application No. 62 / 451,608 (Patent Attorney No. MLEAP.092PR) filed on 27 January 2017, and "DIFFRACTION GRATINGS BASED ON METASURFACES HAVING ASYMMETRIC OPTICAL Described in U.S. Provisional Application No. 62 / 451,615 (Patent Attorney Reference No. MLEAP.103PR), filed on January 27, 2017, titled “ELEMENTS”. These applications are incorporated herein by reference, respectively. It should be understood that the nanostructure 1420 disclosed herein may correspond to projections, nanobeams, etc., described in these applications. In some embodiments, the optical structure 1400 may be any metasurface comprising multiple nanostructures known or to be developed in the art.

[0127] Examples of different configurations of nanostructure 1420 are described below. For clarity, please understand that the nanostructures discussed below may have different reference numbers than 1420. However, please understand that the various nanostructures described below (1520, 1620) correspond to nanostructure 1420 in Figure 10.

[0128] Referring here to Figure 11A, upper and lower diagrams of an exemplary optical structure 1500 are shown, comprising a metasurface 1518 and a nanostructure 1520 that forms an asymmetric Pancharatnam Berry phase optical element (PBOE), which may be advantageous for optical steering, in some embodiments. The substrate 1410 is located beneath the nanostructure 1520. In some embodiments, the substrate 1410 may be an optically transparent substrate, such as a waveguide.

[0129] Referring here to Figure 11B, a perspective view of an exemplary optical element 1500 is shown, comprising an asymmetric Pancharatnam Berry phase optical element (PBOE) and an anti-reflective coating 1430, according to several embodiments. As described herein, the anti-reflective coating 1430 follows the contour of the nanostructure 1520 such that substantially no air or other material is present between the nanostructure 1520 and the anti-reflective coating 1430. Furthermore, as described herein, the anti-reflective coating 1430 may have a substantially flat upper surface 1430a. The anti-reflective coating 1430 can function as a planarizing layer for the underlying non-uniform topology of the nanostructure 1520. In some embodiments, the upper surface 1430a of the anti-reflective coating 1430 may be substantially parallel to a substantially horizontal plane defined by the upper surface (not shown) of the nanostructure 1520. The thickness 1522 of the anti-reflective coating 1430 can be defined as the distance from the top surface of the nanostructure 1520 to the top surface 1430a of the anti-reflective coating 1430. In some embodiments, the thickness 1522 may be in the range of about 10 nm to about 2 microns. In some embodiments, the thickness 1522 may be about 20 nm to about 1 micron. In some embodiments, the thickness 1522 may be about 25 nm to about 500 nm, about 30 nm to about 250 nm, about 40 nm to about 100 nm, and about 45 nm to about 55 nm. In some embodiments, the thickness 1522 may be about 50 nm. In some embodiments, the thickness 1522 may be selected based on the wavelength of light that is configured to redirect the metasurface and is therefore expected to collide with the anti-reflective coating 1430. Preferably, the thickness 1522 is selected to provide disruptive interference between the light reflected from the upper and lower surfaces of the anti-reflective coating 1430, respectively, and the lower surface (not shown) is the surface of the anti-reflective coating that forms an interface with the upper surface of the nanostructure 1520.

[0130] Figure 11C is a plot of transmission and reflection as a function of the angle of incidence of light for an optical structure having a general structure described with reference to Figures 11A-11B. Diffracted transmitted light of various orders is indicated by "T", and reflected light is indicated by "R". In this embodiment, the anti-reflective coating 1430 is an optically transparent photoresist with a refractive index of approximately 1.45, which is lower than the refractive index of the nanostructure 1520 and lower than the refractive index of the substrate 1410 formed from polysilicon, which is approximately 1.77. The thickness 1522 of the anti-reflective coating 1430 is approximately 50 nm, and air forms an interface with the uppermost surface of the anti-reflective coating 1430.

[0131] As can be seen from the plot, the percentage of incident light reflected from the optical structure 1500 remains below approximately 2% over a wide range of incident angles from -20° to 20°. For comparison, the percentage of light reflected from a substantially similar metasurface 1518 without the anti-reflective coating was determined to be approximately 10% (not shown) over the same range of incident angles. Therefore, in this embodiment, the anti-reflective coating 1430 provides approximately 80% reduction in the amount of light reflected from the metasurface 1518 compared to a substantially similar metasurface 1518 without the anti-reflective coating 1430.

[0132] On the other hand, the percentage of light incident on the metasurface 1518 equipped with the anti-reflective coating 1430 that undergoes first-order diffraction at angles suitable for TIR(T1) is about 42% at an incident angle of 0°, and remains at approximately this level over incident angles from about -10° to about 10°. Advantageously, the amount of incident light diffracted at angles suitable for TIR is substantially the same as that of a substantially similar metasurface 1518 without the anti-reflective coating 1430. Thus, the metasurface 1518 equipped with the anti-reflective coating 1430 may be used as an optical element 1500, such as an internally coupled optical element, as described herein, while reducing the amount of reflected light without a substantial reduction in the amount of internally coupled light, thereby reducing or eliminating potential afterimages in the display device in which the optical element is incorporated.

[0133] Referring here to Figure 12A, a cross-sectional perspective view of an exemplary optical element 1600 comprising a metasurface 1618 and an anti-reflective coating 1430 is shown. The metasurface 1618 comprises an asymmetric diffraction grating formed by nanostructures 1620 having different widths. Figure 12B illustrates a cross-sectional side view of the optical element 1600 of Figure 12A. In this embodiment, the substrate 1410 comprises sapphire having a refractive index of approximately 1.77. The multiple nanostructures 1620 comprise amorphous silicon. The anti-reflective coating 1430 may comprise an optically transparent photoresist having a material refractive index of approximately 1.45, and in some embodiments, may be conformally applied to the asymmetric diffraction grating 1618 by spin coating. The thickness 1622 of the anti-reflective coating 1430, which is the distance from the top surface 1620a of the nanostructure 1620 to the top surface 1430a of the anti-reflective coating 1430, is approximately 50 nm.

[0134] Figure 12C is a plot of transmission and reflection spectra for an optical element having the general structure shown in Figures 12A-12B. As can be seen from the plot, the percentage of incident light reflected from the optical element 1600 with the anti-reflective coating 1430 remains below approximately 2% over a wide range of incident angles from -30° to over 30°. The percentage of light reflected from the optical element 1600 with the anti-reflective coating 1430 is approximately 0 over incident angles from approximately -15° to approximately 15°.

[0135] For comparison, the percentage of light reflected from a substantially similar optical element 1600 without the anti-reflective coating 1430 is approximately 15% (not shown) over the same range of incident angles. Therefore, in this embodiment, the anti-reflective coating 1430 provides approximately 87% reduction in the amount of light reflected from the optical element 1600 compared to a substantially similar optical element 1600 without the anti-reflective coating 1430.

[0136] On the other hand, the percentage of light incident on the optical element 1600 equipped with the anti-reflective coating 1430 that undergoes first-order diffraction to TIR(T1) is greater than approximately 30% over incident angles from approximately -30° to approximately 20°. Advantageously, the amount of incident light diffracted to TIR with respect to the optical element 1600 equipped with the anti-reflective coating 1430 is substantially the same as the amount of light diffracted to TIR with respect to a substantially similar optical element 1600 without the anti-reflective coating 1430. Therefore, the optical element 1600 equipped with the anti-reflective coating 1430 may be used as an optical element, such as an internally coupled optical element, as described herein, while reducing the amount of reflected light, as discussed herein, without a substantial reduction in the amount of internally coupled light, thereby reducing or eliminating potential afterimages.

[0137] It should be understood that the metallic surfaces and nanostructures disclosed herein may be formed by patterning, such as by lithography and etching. In some embodiments, the metasurfaces and nanostructures may be patterned using nanoimprinting, thereby avoiding costly lithography and etching processes. Once the nanostructures are patterned, any mask material may be removed in some embodiments, and an anti-reflective coating 1430 may be applied to the metasurface, deposited thereon, or formed thereon, as described herein. In some other embodiments, the mask material itself may be used as the anti-reflective coating. Figures 13A–13D and 14A–14D illustrate examples of process flows for forming optical structures having an anti-reflective coating.

[0138] Figures 13A-13D illustrate cross-sectional views of intermediate structures 1700A-1700D at various stages of processing optical elements 1400, 1500, and 1600 having metasurfaces 1418, 1518, and 1618 using lithography and etching, respectively, according to several embodiments. Referring to intermediate structure 1700A in Figure 13A, the method includes the step of providing a substrate 1410 having a surface 1410S suitable for forming metasurfaces 1418, 1518, and 1618 thereon. The substrate 1410 comprises an optically transparent material having a refractive index n2 and various other material attributes as described above with reference to Figure 10. In addition, the method applies refractive index n 1bulkThe method includes the step of forming a high refractive index layer 1411 having [a specific characteristic]. The high refractive index layer 1411 is suitable for forming one or more nanostructures 1420, 1520, 1620 when patterned, as described above with reference to Figure 10-12. The high refractive index layer 1411 may be deposited using any suitable technique such as chemical vapor deposition (CVD), which includes plasma-based CVD processes such as plasma-enhanced chemical vapor deposition (PECVD) and heat-based CVD processes such as low-pressure chemical vapor deposition (LPCVD), according to some embodiments. The high refractive index layer 1411 may also be deposited using physical vapor deposition (PVD), evaporation, and atomic layer deposition, among other techniques. The method also includes the step of forming a mask layer 1431A on the high refractive index layer 1411. The mask layer 1431A may be formed from or include one or more layers of a material suitable for providing a template for subsequent etching of the underlying high refractive index layer 1411. In some embodiments, the mask layer 1431A may be a photoresist, which may be spin-coated and then post-scorched. In some other embodiments, the mask layer 1431A may include multiple layers, including a hard mask layer formed on the high refractive index layer 1411 and a photoresist layer formed on the hard mask layer. The hard mask layer may be included, for example, when the photoresist layer cannot provide sufficient etching selectivity during the subsequent etching pattern transfer to the underlying high refractive index layer 1411. The hard mask layer may also act as an anti-reflective coating, minimizing reflections during the subsequent exposure process. In some embodiments, the hard mask layer may be a film deposited by either a spin-coated polymer or a deposition technique for depositing the high refractive index layer 1411. When included, the hard mask layer may provide better etching selectivity than the upper photoresist layer. In some embodiments, the photoresist may be a positive photoresist or a negative photoresist.A positive photoresist is a type of photoresist in which the portion of the photoresist exposed to light becomes soluble in the photoresist developer, while a negative photoresist is a type of photoresist in which the portion of the photoresist exposed to light becomes insoluble in the photoresist developer.

[0139] In some embodiments, the photoresist and / or hard mask layer may be formed from a silicon or silicon oxide-containing material that has sufficient etching selectivity for the high refractive index layer 1411, such that the photoresist and / or hard mask layer remains relatively intact through etching of the underlying high refractive index layer 1411. In these embodiments, the silicon or silicon oxide-containing photoresist and / or hard mask layer may remain on top of one or more nanostructures 1420, 1520, 1620 after patterning, as described above with reference to Figure 10-12.

[0140] Referring to the intermediate structure 1700B in Figure 13B, after deposition and post-deposition sintering, the method includes the step of patterning the photoresist layer of the mask layer 1431 by selectively exposing a portion of the photoresist to a pattern of light. Exposure to light, e.g., coherent UV light or an electron beam, causes a chemical change, e.g., polymer crosslinking, within the photoresist, which allows the exposed portion of the photoresist to be selectively removed by a developer solution for positive photoresist, or the unexposed portion of the photoresist to be selectively removed by a developer solution for negative photoresist. In response to the selective removal, the resulting patterned mask photoresist remains on the high refractive index layer 1411, thereby serving as a template for subsequent patterning of the underlying hard mask layer, if included, by etching, for example. The resulting intermediate structure 1700C shows the patterned mask layer 1411, which includes the patterned photoresist and, optionally, a patterned hard mask layer, if included.

[0141] Referring to the intermediate structure 1700C in Figure 13C, the patterned mask layer 1431 may be used as a template for etching the underlying high refractive index layer 1411 into one or more nanostructures 1420, 1520, 1620. It should be understood that the nanostructures 1420, 1520, 1620 may be configured as desired based on the desired properties of the resulting metasurface. In some embodiments, the nanostructures 1420, 1520, 1620 may include a feature extending in a first lateral direction (e.g., the y-direction) and a plurality of second nanostructures 1420, 1520, 1620 extending in a second direction (e.g., the x-direction), as described in more detail above with reference to Figure 10-12. In various embodiments, the high refractive index layer 1411 may be etched, for example, by anisotropically dry etching. The etching process employed may have a suitable selectivity for the mask layer 1431 and / or the substrate 1410 such that a portion of the high refractive index layer 1411 is removed without prematurely removing the mask layer 1431 and / or undesirably damaging the exposed portion of the substrate 1410.

[0142] Referring to the intermediate structure 1700D, in some embodiments, a mask layer 1431 on one or more nanostructures 1420, 1520, 1620 is removed therefrom. The resist portion of the mask layer 1431 may be removed in a process called ashing, for example, by using a liquid resist stripping solution or an oxygen-based plasma. If desired, the underlying hard mask layer, if included, may subsequently be removed using a wet or dry etching process that selectively removes the hard mask without substantially affecting one or more nanostructures 1420, 1520, 1620 or the substrate 1410. Subsequently, an anti-reflective coating may be deposited on or on the sides of the nanostructures 1420, 1520, 1620, for example, by spin coating or by chemical vapor deposition and subsequent planarization of the deposited layer.

[0143] In some other embodiments, for example, the embodiments described above with reference to Figure 10-12, the mask layer 1431, for example, a photoresist / hard mask or hard mask, may be left in place without being removed. In these embodiments, the mask layer 1431 may comprise an anti-reflective coating 1430, as described herein with reference to Figure 10-12.

[0144] Figures 14A-14D illustrate cross-sectional views of intermediate structures 1800A-1800D at various stages of processing of optical elements 1400, 1500, and 1600 having metasurfaces 1418, 1518, and 1618, respectively, according to several embodiments. In some embodiments, the methods for forming the intermediate structures 1800A, 1800C, and 1800D in Figures 14A, 14C, and 14D are similar to the methods for forming the intermediate structures 1700A, 1700C, and 1700D in Figures 13A, 13C, and 13D, respectively. However, the method for forming the intermediate structure 1800B in Figure 14B differs from the method for forming the intermediate structure 1700B in Figure 13B, and the differences are described below.

[0145] Referring to the intermediate structure 1800B in Figure 14B, unlike the method described above with reference to Figure 13B, instead of patterning the photoresist layer by selectively exposing and removing a portion of the photoresist using light or an electron beam, in the illustrated embodiments, a nanoimprint template 1432 or nanoimprint mold having a predetermined topological pattern according to the formation of one or more nanostructures 1420, 1520, 1620 is brought into contact with the imprint resist of the mask layer 1431A. In some embodiments, the template 1432 is pressed into the imprint resist formed from a thermoplastic polymer at a temperature, for example, higher than the glass transition temperature of the imprint resist, thereby transferring the pattern of the template 1432 to the softened imprint resist. After cooling, the template 1432 is separated from the imprint resist, and the patterned resist is left on the high refractive index layer 1411. In some other embodiments, after being pressed into the imprint resist, the imprint resist is cured by crosslinking under UV light.

[0146] Referring to Figure 15, according to some embodiments, as described above with respect to Figures 13D and 14D, after the removal of the mask layer 1431 from one or more nanostructures 1420, 1520, 1620, the anti-reflective coating 1430 may be conformally deposited on the nanostructures 1420, 1520, 1620 by a deposition process such as a chemical vapor deposition process or an atomic layer deposition process. Thus, in some embodiments, the deposited anti-reflective coating 1430 may be a conformal layer that covers the nanostructures 1420, 1520, 1620 and follows the contours of the nanostructures 1420, 1520, 1620 without completely filling the volume separating them.

[0147] Various specific embodiments have been described in the aforementioned specification. However, it will become apparent that various modifications and changes can be made therein without departing from the broader spirit and scope of the invention. The specification and drawings should therefore be considered illustrative, not restrictive.

[0148] In fact, each of the systems and methods described herein has several innovative aspects, and it should be understood that none of them alone are involved in or required for the desirable attributes disclosed herein. The various features and processes described above may be used independently of each other or in various combinations. All possible combinations and secondary combinations are intended to fall within the scope of this disclosure.

[0149] Some features described herein in the context of a separate embodiment may also be implemented in a combination in a single embodiment. Conversely, various features described in the context of a single embodiment may also be implemented separately in multiple embodiments or in any preferred secondary combination. Furthermore, features described above as acting in a combination and further claimed as such, but in some cases one or more features from the claimed combination may be removed from the combination, and the claimed combination may be subject to secondary combinations or variations of secondary combinations. No single feature or group of features is required or essential in every embodiment.

[0150] In particular, conditional statements used herein, such as “can,” “could,” “might,” “may,” “eg,” and equivalents, should be understood to generally convey that one embodiment includes certain features, elements, and / or steps, while other embodiments do not, unless otherwise specifically stated or understood in the context in which they are used. Therefore, such conditional statements are generally not intended to suggest that features, elements, and / or steps are required in any way for one or more embodiments, or that one or more embodiments necessarily involve logic for determining whether these features, elements, and / or steps are included or should be implemented in any particular embodiment, with or without input or prompting by the author. The terms “equipment,” “includes,” “have,” and equivalents are synonyms and are used in a non-restrictive manner to encompass additional elements, features, actions, behaviors, etc. Furthermore, the term "or" is used in its inclusive sense (and not in its exclusive sense), and therefore, for example, when used to connect a list of elements, the term "or" means one, some, or all of the elements in the list. In addition, the articles "a," "an," and "the," as used in this application and the attached claims, should be interpreted to mean "one or more" or "at least one" unless otherwise specified. Similarly, while actions may be depicted in drawings in a particular order, it should be recognized that this does not mean that such actions must be performed in a particular order or sequential order shown, or that all illustrated actions must be performed, in order to achieve the desired result. Furthermore, drawings may graphically depict one or more exemplary processes in the form of flowcharts. However, other actions not depicted may also be incorporated into the graphically illustrated exemplary methods and processes. For example, one or more additional actions may be performed before, after, simultaneously with, or in between any of the illustrated actions.In addition, the operations may be rearranged or rearranged in other embodiments. In some situations, multitasking and parallel processing may be advantageous. Furthermore, the separation of various system components in the embodiments described above should not be understood as requiring such separation in all embodiments, and it should be understood that the described program components and systems may generally be integrated together in a single software product or packaged in multiple software products. In addition, other implementations are also within the scope of the following claims. In some cases, the actions enumerated in the claims may be performed in a different order and still achieve the desired results.

[0151] Therefore, the claims are not intended to be limited to the implementations shown herein, but should be given the broadest scope consistent with the disclosures, principles, and novel features disclosed herein.

Claims

1. A method for forming an anti-reflective coating on the metasurface of an optical element, wherein the method is: To provide an optically transparent substrate having the metasurface, wherein the metasurface comprises a plurality of nanostructures forming repeating unit cells, and when viewed from above, each unit cell is A plurality of first nanostructures having a first length and a first width, wherein the first nanostructures are separated from each other by gaps along the first length of the first nanostructures, the first length is elongated in a first direction, the first widths differ from each other, and the first length is the same for a plurality of first nanostructures, A plurality of second nanostructures arranged at the ends of the plurality of first nanostructures, wherein the second nanostructures are separated from each other by gaps along a second length of the second nanostructure, and each of the second nanostructures has a second length and a second width, the second length being elongated in the second direction, the second widths being different from each other, and the second length being the same, and Equipped with, The second direction intersects the first direction, Depositing layers of optically transparent material across the plurality of nanostructures and Includes, The optically transparent layer forms the anti-reflective coating. The anti-reflective coating has a thickness configured to provide destructive interference between the image light reflected from the upper surface of the anti-reflective coating and the image light reflected from the bottom surface of the anti-reflective coating. A method wherein the layer of optically transparent material is conformally arranged across the metasurface and follows the contour of the nanostructure, without completely filling the volume separating each of the nanostructures, such that the upper surface of the optical element is non-planar.

2. The method according to claim 1, wherein the optically transparent material comprises a polymer.

3. The method according to claim 1, wherein the optically transparent material includes a photoresist.

4. The method according to claim 1, wherein the distance from the uppermost surface of the nanostructure to the uppermost surface of the anti-reflective coating formed is 10 nm to 1 micron.

5. The method according to claim 1, wherein depositing the optically transparent material layer comprises spin-coating the optically transparent material over the nanostructure.

6. The method according to claim 1, wherein the deposition of the optically transparent material layer is carried out by performing a chemical vapor deposition (CVD) process.

7. The method according to any one of claims 1 to 6, wherein the optically transparent material layer has a refractive index, the refractive index being greater than 1 and less than the refractive index of the material constituting the metasurface.

8. The method according to any one of claims 1 to 6, wherein the meta-surface comprises a diffraction grating.

9. The method according to any one of claims 1 to 6, wherein the metasurface comprises an asymmetric diffraction grating.

10. The method according to any one of claims 1 to 6, wherein the metasurface comprises a Pancharatnam Berry phase optical element (PBOE).

11. The method according to any one of claims 1 to 6, wherein the meta-surface comprises a multi-stage nanostructure.

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