Optical waveguide and augmented reality display device
Patent Information
- Application Number
- CN202510188297.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-19
- Publication Date
- 2026-08-28
AI Technical Summary
然而,现有技术中的光波导在使用过程中存在拖影现象(如图1所示),并且在动态成像过程中,不同帧之间的拖影问题会更加严重
Smart Images

Figure CN122652736A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of display technology, and in particular to an optical waveguide and an augmented reality display device. Background Technology
[0002] Augmented reality display technology based on optical waveguides exists in this field. However, existing optical waveguides suffer from motion blur (e.g., image trailing) during use. Figure 1 As shown in the image, the motion blur problem between different frames becomes more severe during dynamic imaging. Currently, there is no effective method to improve this motion blur issue in existing technologies. Therefore, there is an urgent need in the field for an optical waveguide that can reduce or eliminate the motion blur phenomenon generated during use, thereby providing a higher quality display effect. Summary of the Invention
[0003] Therefore, this application aims to provide an optical waveguide and augmented reality display device that can reduce the ghosting phenomenon generated during use.
[0004] In one aspect, this application provides an optical waveguide, comprising: an optical waveguide substrate; and a grating layer disposed on the surface of the optical waveguide substrate, the grating layer comprising a grating region and a blank region, the height of the blank region being between 0.7 and 1.3 times the height of the grating region.
[0005] In one possible implementation of this application, the height of the blank area varies between 0.7 times and 1.3 times the height of the raster area.
[0006] In one possible implementation of this application, the height of the blank area varies continuously.
[0007] In one possible implementation of this application, the height of the blank area varies in a stepped manner. In one possible implementation of this application, the height of the blank area at the first end immediately adjacent to the grating area is between 1 and 1.3 times the height of the grating area, and the height of the blank area at the second end opposite to the first end is between 0.7 and 1 times the height of the grating area, with the height of the blank area gradually increasing from the second end to the first end.
[0008] In one possible implementation of this application, the grating region includes a first grating region and a second grating region. The first grating region has a first height, and the second grating region has a second height. The first height is less than the second height, and the difference between the first height and the second height is less than or equal to 30% of the second height. A blank region is disposed between the first grating region and the second grating region, and the height of the blank region is between 0.7 times the second height and 1.3 times the first height.
[0009] In one possible implementation of this application, the grating region includes a first grating region and a second grating region. The first grating region has a first height, and the second grating region has a second height. The first height is less than the second height. A blank region is disposed between the first grating region and the second grating region. The height of the blank region at the first end adjacent to the first grating region is between 0.7 and 1.3 times the first height, and the height of the blank region at the second end adjacent to the second grating region is between 0.7 and 1.3 times the second height. The height of the blank region varies between the height at the first end and the height at the second end.
[0010] In one possible implementation of this application, the grating region includes a first grating region and a second grating region, the first grating region and the second grating region having varying heights, a blank region disposed between the first grating region and the second grating region, the end of the blank region immediately adjacent to the first grating region being designated as the first end, the end of the blank region immediately adjacent to the second grating region being designated as the second end, the first grating region having a first height at the end immediately adjacent to the first end, the second grating region having a second height at the end immediately adjacent to the second end, the first height being less than the second height and the difference between the first height and the second height being less than or equal to 30% of the second height; wherein, the height of the blank region is between 0.7 times the second height and 1.3 times the first height.
[0011] In one possible implementation of this application, the grating region includes a first grating region and a second grating region, the first grating region and the second grating region having varying heights, a blank region disposed between the first grating region and the second grating region, the end of the blank region immediately adjacent to the first grating region being designated as a first end, the end of the blank region immediately adjacent to the second grating region being designated as a second end, the first grating region having a first height at the end immediately adjacent to the first end, and the second grating region having a second height at the end immediately adjacent to the second end, the first height being less than the second height; wherein, the height of the first end is between 0.7 and 1.3 times the first height, the height of the second end is between 0.7 and 1.3 times the second height, and the height of the blank region varies between the height of the first end and the height of the second end.
[0012] On the other hand, this application provides an augmented reality display device, including the aforementioned optical waveguide. Attached Figure Description
[0013] The specific embodiments of this application are described in detail below with reference to the accompanying drawings, wherein:
[0014] Figure 1 This illustrates the ghosting phenomenon present in the displayed image of a display device employing an optical waveguide;
[0015] Figure 2 A top view of an optical waveguide according to an embodiment of this application is shown;
[0016] Figure 3 Showing according to Figure 2 A side cross-sectional view of the optical waveguide in the embodiment;
[0017] Figure 4A A top view of an optical waveguide according to an embodiment of this application is shown;
[0018] Figure 4B Showing according to Figure 4A Another top view of the optical waveguide in the embodiment;
[0019] Figure 4C Showing according to Figure 4A Another top view of the optical waveguide in the embodiment;
[0020] Figure 5 A side cross-sectional view of an optical waveguide according to an embodiment of this application is shown;
[0021] Figure 6A A schematic diagram of an optical waveguide according to an embodiment of this application is shown;
[0022] Figure 6B Showing according to Figure 6A A schematic diagram of the scattering and diffraction of the optical waveguide in the embodiment;
[0023] Figure 7A A schematic diagram of an optical waveguide according to an embodiment of this application is shown;
[0024] Figure 7B Showing according to Figure 7A A schematic diagram of the scattering and diffraction of the optical waveguide in the embodiment;
[0025] Figure 8 The R0 order scattering diffraction spectrum of an optical waveguide according to an embodiment of this application is shown.
[0026] Figure 9A This diagram shows a structural schematic of an optical waveguide according to an embodiment of the present application;
[0027] Figure 9B Showing according to Figure 9A Another schematic diagram of the optical waveguide structure in the embodiment;
[0028] Figure 9C Showing according to Figure 9A Another schematic diagram of the optical waveguide structure in the embodiment;
[0029] Figure 10A This diagram shows a structural schematic of an optical waveguide according to an embodiment of the present application;
[0030] Figure 10B Showing according to Figure 10AAnother schematic diagram of the optical waveguide structure in the embodiment;
[0031] Figure 10C Showing according to Figure 10A Another schematic diagram of the optical waveguide structure in the embodiment;
[0032] Figure 11A This diagram shows a structural schematic of an optical waveguide according to an embodiment of the present application;
[0033] Figure 11B Showing according to Figure 11A Another schematic diagram of the optical waveguide structure in the embodiment;
[0034] Figure 12 A schematic diagram of an optical waveguide according to an embodiment of this application is shown;
[0035] Figure 13 A schematic diagram of an optical waveguide according to an embodiment of this application is shown. Detailed Implementation
[0036] To enable those skilled in the art to more clearly understand the concepts and ideas of this application, the application is described in detail below with reference to specific embodiments. It should be understood that the embodiments given herein are only a part of all possible embodiments of this application. After reading the specification of this application, those skilled in the art are capable of making improvements, modifications, or substitutions to parts or the entirety of the following embodiments, and such improvements, modifications, or substitutions are also included within the scope of protection claimed in this application.
[0037] In this document, the terms "one," "an," and other similar words are not intended to indicate that only one of the described things exists, but rather that the description refers only to one of the described things, which may have one or more. In this document, the terms "comprising," "including," and other similar words are intended to indicate a logical relationship, not a spatial relationship. For example, "A includes B" means that logically B belongs to A, not that spatially B is located inside A. Furthermore, the meanings of the terms "comprising," "including," and other similar words should be considered open-ended, not closed-ended. For example, "A includes B" means that B belongs to A, but B does not necessarily constitute all of A; A may also include other elements such as C, D, and E.
[0038] In this document, the terms "first," "second," and other similar terms are not intended to imply any order, quantity, or importance, but are merely used to distinguish different elements. In this document, the terms "embodiment," "this embodiment," "an embodiment," or "an example" do not indicate that the description applies only to one specific embodiment, but rather that such description may also be applicable to one or more other embodiments. Those skilled in the art will understand that any description made herein with respect to one embodiment can be substituted, combined, or otherwise combined with the descriptions in one or more other embodiments, and the new embodiments resulting from such substitutions, combinations, or other combinations are readily conceived by those skilled in the art and fall within the scope of protection of this application.
[0039] In the various embodiments of this application, an optical waveguide can refer to a structure capable of confining light within itself and guiding light to propagate along a specific path. The working principle of an optical waveguide is based on the phenomenon of total internal reflection. When light enters the optical waveguide at a certain angle, due to the difference in refractive index between the optical waveguide and the surrounding medium, total internal reflection occurs at the boundary of the optical waveguide, thereby confining the light within the optical waveguide for propagation.
[0040] In the embodiments of this application, an augmented reality display device can refer to a device that combines virtual digital information with a real scene and presents the fused content to the user. It senses the environment through sensors such as cameras and gyroscopes, and displays the information using optical or video perspective methods. During operation, it matches virtual and real information based on sensor data. This type of device has wide applications, allowing users to see virtual elements in real-world scenes and enhancing their perception of the world.
[0041] Augmented Reality (AR) near-eye display systems, as a technology that merges virtual information with the real world, typically include micro-projectors and optical displays, with optical waveguides being one implementation path for these displays. Currently, optical waveguide solutions are mainly divided into geometric waveguides and diffractive waveguides. The essence of a diffractive waveguide is to utilize the diffraction properties of a grating to couple an incident light beam into the waveguide. When light propagates in the waveguide, it passes sequentially through the grating region and the blank region. The boundary between these two regions, due to the height difference, forms a step, causing abnormal scattering and diffraction, resulting in motion blur. During dynamic imaging, the motion blur problem becomes even more pronounced between different frames.
[0042] In some embodiments of this application, various designs are provided for different situations. The height of the blank area is set to the range of 0.7hg to 1.3hg (hg represents the height of the grating area) or a gradual height is set within this range. The size of the blank area is determined by the two adjacent grating areas, which can effectively reduce the generation of ghosting and improve the imaging quality of the diffractive waveguide.
[0043] In some embodiments of this application, the height at the boundary between the grating region and the blank region without a grating is set to a range of 0.7hg to 1.3hg, or a gradually varying height is set within this range. This effectively reduces or eliminates the trailing effect of the diffracted waveguide, improving imaging quality.
[0044] In some embodiments of this application, the size of the blank area at the boundary is determined by the size of the adjacent grating area, thereby avoiding the introduction of additional steps that would cause diffraction and scattering.
[0045] In some embodiments of this application, various applicable designs are provided, making the design results universal. This design method can be implemented under various partition designs and various grating structures, making the design method versatile.
[0046] Figure 2 A top view of an optical waveguide according to an embodiment of this application is shown.
[0047] like Figure 2 As shown, the optical waveguide includes an optical waveguide substrate 210 and a grating layer disposed on the surface of the optical waveguide substrate 210. The grating layer includes grating regions and blank regions 224. A grating is disposed in the grating regions, and no grating is disposed in the blank regions. Figure 2 In the optical waveguide, the grating region includes a coupling-in region 221, a turning region 222, and a coupling-out region 223. The coupling-in region 221 couples the image light emitted from the external optical engine into the waveguide substrate, serving as the entry point for image information into the waveguide. The turning region 222 dilates and redirects the image light emitted from the coupling-in region, guiding it along a predetermined path within the waveguide substrate to the coupling-out region. The coupling-out region 223 couples the image light propagating within the waveguide substrate out, allowing the light to enter the human eye and be observed as a virtual image.
[0048] Specifically, when designing surface-embossed grating diffraction waveguides, a three-segment or two-segment design is typically used to achieve two-dimensional pupil expansion. Figure 2 The image shows one layout design of a three-part diffractive waveguide.
[0049] Figure 3 Showing according to Figure 2 A side cross-sectional view of the optical waveguide in the embodiment.
[0050] like Figure 3As shown, the optical waveguide includes an optical waveguide substrate 310 and a grating layer 320. The grating in the grating layer 320 includes a coupling grating 321, a bend grating 322, and an output grating 323. The coupling grating 321 couples light rays into the optical waveguide. The bend grating 322 bends the coupled light rays. The output grating 323 couples the bend grating out of the optical waveguide.
[0051] It should be noted that, for ease of representation and simplification, Figure 3 The coupling grating 321, the turning grating 322, and the coupling grating 323 are shown arranged equidistantly in a lateral manner. However, according to Figure 2 It can be seen that these three grating regions are arranged at right angles in the top view, but their side cross-sectional view may not be as... Figure 3 They are arranged horizontally at equal intervals.
[0052] Specifically, during design and optimization, the optical waveguide substrate and the grating structure on it are typically considered. The tooth profile of the grating is not unique. In this embodiment, the gratings in the coupling region, transition region, and coupling region are all rectangular gratings of equal height. Those skilled in the art will understand that other tooth profiles and combinations of different heights can also be selected for the design.
[0053] Figures 4A to 4C A top view of three optical waveguides according to an embodiment of this application is shown.
[0054] like Figures 4A to 4C As shown, the optical waveguide includes an optical waveguide substrate 410 and a grating layer. The grating layer includes a grating region and a blank region 420. The grating region includes a coupling-in region 421, a transition region 422, and a coupling-out region 423.
[0055] Figure 4A A three-partition design is shown, wherein there is a blank area 431 between the coupling-in area 421 and the transition area 422, and there is also a blank area 432 between the transition area 422 and the coupling-out area 423.
[0056] Figure 4B A three-partition design is shown, wherein there is no blank area between the coupling-in area 421 and the transition area 422, but there is a blank area 432 between the transition area 422 and the coupling-out area 423.
[0057] Figure 4C A two-partition design is shown, wherein the grating region does not include the transition region, and there is only a blank region 433 between the coupling-in region 421 and the coupling-out region 423.
[0058] Specifically, to reduce or eliminate the trailing effect of diffracted waveguides, the boundary between the grating region and the blank region needs to be considered during the design process. Since only the propagation process of light is considered, only the blank regions between each grating section need to be analyzed. This can be achieved using methods such as... Figures 4A to 4C The diagram illustrates a three-zone or two-zone design. The blank area 420 includes: a blank area 431 between the coupling-in zone 421 and the transition zone 422 in the third zone, the size of which is determined by the dimensions of the coupling-in zone 421 and the transition zone 422; a blank area 432 between the transition zone 422 and the coupling-out zone 423 in the third zone, the length of which is the same as the length of the corresponding grating zone; and a blank area 433 between the coupling-in zone 421 and the coupling-out zone 423 in the second zone, the size of which is determined by the dimensions of the coupling-in zone 421 and the coupling-out zone 423. In some cases, because the grating tooth shape and height are consistent across the three zones, it is sufficient to discuss the scattering and diffraction at a specific edge region.
[0059] Figure 5 A side cross-sectional view of an optical waveguide according to an embodiment of this application is shown.
[0060] like Figure 5 As shown, the optical waveguide includes an optical waveguide substrate 510 and a grating layer 520. The grating layer 520 includes a grating region and a blanking region. The grating region includes an input grating 521, a transition grating 522, and an output grating 523. The blanking region includes a blanking region 524 between the input grating 521 and the transition grating 522, and a blanking region 525 between the transition grating 522 and the output grating 523.
[0061] Specifically, for diffractive waveguide samples fabricated using nanoimprint technology, the waveguide substrate 510 not only contains the designed grating structure but also residual adhesive. This is because during the nanoimprint sample fabrication process, a layer of adhesive is first spin-coated onto the waveguide substrate 510, and then the grating structure on the sub-plate is imprinted onto the waveguide substrate 510, forming the designed grating tooth shape in the adhesive layer. For the blank areas, the adhesive does not disappear but remains on the waveguide substrate 510. At the boundary between the blank areas formed by the residual adhesive and the grating areas, a step with a certain height difference is formed. Figure 5 As shown in the dashed box, the presence of this step causes additional scattering and diffraction of light during propagation, resulting in motion blur when the diffracted waveguide is displayed, thus affecting the image quality.
[0062] Figure 6A and Figure 6B A schematic diagram showing the scattering and diffraction of an optical waveguide according to an embodiment of this application is provided.
[0063] like Figure 6AAs shown, the optical waveguide includes an optical waveguide substrate and a grating layer. The grating layer includes a grating region and a blank region, where the height of the blank region is h and the height of the grating region is hg, where h is less than hg.
[0064] Specifically, Figure 6A The diagram shows a blank area with a height lower than the grating area. When the incident light ray I propagates inside the waveguide, it undergoes diffraction, producing R0 and R-1 orders, with the R-1 order to the left of the R0 order. To ensure total internal reflection inside the waveguide, the incident angle is set greater than the total reflection angle; for example, this incident angle is set to 40°.
[0065] Figure 6B The diagram shows the scattering and diffraction results at the boundary between the blank area and the grating area. The horizontal axis, "angle," represents the scattering and diffraction angle (corresponding to the diffraction angle), and the vertical axis, log(|E|^2), represents the scattering and diffraction intensity. At this point, the scattering and diffraction intensity of the R0 order is higher than that of the R-1 order. The scattering and diffraction patterns of the R0 and R-1 orders are the same, with the bandwidth of their scattering and diffraction peaks being wider on the right than on the left. This will cause a right-side ghosting effect in actual optical waveguide imaging. Figure 1 The middle arrow points in the direction in which the trail appears.
[0066] Figure 7A and Figure 7B A schematic diagram showing the scattering and diffraction of an optical waveguide according to an embodiment of this application is provided.
[0067] like Figure 7A As shown, the optical waveguide includes an optical waveguide substrate and a grating layer. The grating layer includes a grating region and a blank region, where the height of the blank region is h, and the height of the grating region is hg, where h is greater than hg.
[0068] Specifically, Figure 7A The diagram shows a blank area with a height higher than the raster area. Figure 7B As shown, the scattering and diffraction patterns of the R0 and R-1 orders are the same, with the bandwidth of their scattering and diffraction peaks being wider on the right than on the left. This leads to a trailing effect on the right side during actual optical waveguide imaging. Since the scattering and diffraction intensity of the R0 order in this embodiment is significantly higher than that of the R-1 order, the trailing effect is mainly contributed by the R0 order. Therefore, we mainly focus on the scattering and diffraction of the R0 order.
[0069] Figure 8 R0 order scattering diffraction spectrum of an optical waveguide according to an embodiment of this application.
[0070] like Figure 8The diagram shows the R0 diffraction order scattering diffraction spectrum as a function of the blank area height, specifically the R0 order scattering diffraction spectrum as the step height of the blank area changes. The grating height is set to 140 nm (this height is not fixed and can be adjusted according to the actual design). The vertical axis "thickness" represents the height of the blank area, varying from 0 nm to 200 nm. The dashed line corresponds to the height of the blank area where the scattering diffraction bandwidth is narrowest, i.e., the trailing effect is weakest, and hg represents the grating height. Within this height range of h to hg, the corresponding scattering diffraction bandwidths are all relatively small, and the trailing effect is weaker than at other heights. Therefore, when the grating height is set to hg, the blank area height can be set to within the range of 0.7hg to hg, at which point the trailing effect of the diffracted waveguide is weakest. To meet the design requirements of all structures, this height range can be extended to ±30% of hg, i.e., 0.7hg to 1.3hg.
[0071] Figures 9A to 9C A schematic diagram of an optical waveguide according to an embodiment of this application is shown.
[0072] Figure 9A Show the corresponding height of the steps in the blank area Figure 8 A schematic diagram of the structure when h is the value in the middle. (Example) Figure 9A As shown, the optical waveguide includes an optical waveguide substrate and a grating layer. The grating layer is disposed on the surface of the optical waveguide substrate and includes a grating region and a blank region. The height h of the blank region is between 0.7 and 1.3 times the height hg of the grating region. Through extensive research and practice, the inventors of this application have discovered that the motion blur problem in optical waveguides is caused by the height difference at the boundary between the grating region and the blank region. To address this issue, this application limits the height difference between the grating region and the blank region to a certain range. Specifically, this application specifies that the height of the blank region is 0.7-1.3 times that of the grating region. This greatly alleviates the motion blur problem caused by the height difference at the boundary between the grating region and the blank region, thereby providing a better display effect and user experience.
[0073] Specifically, Figure 9A This is a structural diagram showing the structure when the height h of the blank area is set to the range of 0.7hg to 1.3hg. The height h of the blank area remains constant, meaning the top surface of the blank area is horizontal.
[0074] In this embodiment, the preparation (or height adjustment) of the blank area can be carried out in the following ways. When the grating is manufactured using nanoimprinting, a material with a refractive index similar to that of the grating is filled on the residual adhesive layer in the blank area; or, when imprinting the master / daughter plate, the shape of the blank area is taken into account and designed to the corresponding master / daughter plate size. When the grating is manufactured using an etching process, the grating area is covered, and a material with a refractive index similar to that of the blank area is deposited only for filling.
[0075] Figure 9B This diagram illustrates a structure where steps in a blank area are arranged to create a gradually increasing height. (For example...) Figure 9B As shown, the height h of the blank area varies between 0.7 and 1.3 times the height hg of the raster area. By varying the height of the blank area within a specified range, the height difference at the boundary between the blank area and other areas (such as the raster area) can be reduced, and the abrupt change in height at the boundary can be reduced. This allows the blank area to connect with other areas more smoothly, which helps to further reduce the ghosting phenomenon caused by the height difference.
[0076] For example, the height h of the blank area can be varied in a stepped manner. By adopting a stepped variation, the ghosting phenomenon can be reduced while improving the ease of processing and reducing manufacturing costs.
[0077] Specifically, such as Figure 9B As shown, since the height of the blank area at the edge can vary within a range, the height of this area can also be set as a stepped gradient, with the lowest gradient height being 0.7hg and the highest being hg or 1.3hg.
[0078] Figure 9C This diagram illustrates a structure where the steps in the blank area are set to a smoothly gradient height. (Example:) Figure 9C As shown, the height h of the blank area varies continuously. By using a continuous variation, the height change of the blank area becomes smoother, which helps to further reduce the ghosting phenomenon caused by height differences.
[0079] At this point, the height of the blank area at the first end (right end in the diagram) adjacent to the raster area is between 1 and 1.3 times the height hg of the raster area, and the height of the blank area at the second end (left end in the diagram) opposite to the first end is between 0.7 and 1 times the height hg of the raster area. The height h of the blank area gradually increases from the second end to the first end. By making the blank area gradually increase from the end furthest from the raster area to the end adjacent to the raster area, and making the height of the end adjacent to the raster area 1-1.3 times the height of the raster area, the blank area can have a smoother height change pattern, and at the boundary with the raster area, it has a height range that can better reduce ghosting, thereby improving the display effect.
[0080] Specifically, such as Figure 9C As shown, the height of the blank area at the boundary can be set to a smooth gradient. Figures 9A to 9C The design can effectively improve the motion blur of optical waveguides and enhance imaging quality.
[0081] Figures 10A to 10C A schematic diagram of an optical waveguide according to an embodiment of this application is shown.
[0082] When the raster heights of each zone are inconsistent, there are two scenarios to discuss. One scenario is that the height difference between the first height hg1 of the first raster region and the second height hg2 of the second raster region is less than or equal to 30% of the larger of the first and second heights, i.e., the height difference dh ≤ 30% * max(hg1, hg2). Figures 10A to 10C The analysis shows the case where the grating height difference dh ≤ 30% * max(hg1, hg2).
[0083] like Figure 10A As shown, the grating region includes a first grating region and a second grating region. The first grating region has a first height hg1, and the second grating region has a second height hg2. The first height hg1 is less than the second height hg2, and the difference between the first height hg1 and the second height hg2 is less than or equal to 30% of the first height hg2. A blank area is set between the first grating region and the second grating region. In this case, the height of the blank area can remain constant (the top is horizontal), and the height of the blank area is between 0.7 times the second height hg2 and 1.3 times the first height hg1. When the blank area is arranged between two grating regions with different heights, if the height difference between the two grating regions is less than 30% of the higher height, then the blank area can be between 1.3 times the first height (lower) and 0.7 times the second height (higher). In this way, the height difference of the blank area at the boundary with the first grating region will not exceed 30% of the first height, and the height difference at the boundary with the second grating region will not exceed 30% of the second height, thus ensuring that no severe ghosting occurs at either end of the blank area.
[0084] Specifically, Figure 10A This diagram shows a structure where the blank area is set to the same height as the lower grating area (i.e., the first grating area) (h = hg1). Figure 10A As shown, the height of the blank area can be based on the height of the lower of the first and second grating areas, and the height of the blank area can be kept consistent with the height hg1 of the first grating area.
[0085] like Figure 10B As shown, the grating region includes a first grating region and a second grating region. The first grating region has a first height hg1, and the second grating region has a second height hg2. The first height hg1 is less than the second height hg2. A blank region is disposed between the first grating region and the second grating region. The height of the blank region at the first end adjacent to the first grating region is between 0.7 and 1.3 times the first height hg1, and the height of the blank region at the second end adjacent to the second grating region is between 0.7 and 1.3 times the second height hg2. The height of the blank region varies between the height at the first end and the height at the second end.
[0086] Specifically, Figure 10B This diagram illustrates a structure where the blank area is set with a stepped, gradually changing height. (Example) Figure 10B As shown, the blank area can be set to a stepped gradient height. The number of steps in the gradient is not specifically required.
[0087] like Figure 10C As shown, it illustrates a structural diagram where the blank area is set with a smooth, gradient height. Figure 10C In the middle, the blank area can be set to a smooth gradient height, with the gradient range being 130% of the larger of the first and second heights to 70% of the smaller of the first and second heights, that is, from 130%*max(hg1,hg2) to 70%*min(hg1,hg2).
[0088] Figure 11A and Figure 11B A schematic diagram of an optical waveguide according to an embodiment of this application is shown.
[0089] When the raster heights of different zones are inconsistent, there are two scenarios to consider. Besides... Figures 10A to 10C In addition to the case shown, another case is that the height difference between the first height hg1 of the first grating region and the second height hg2 of the second grating region is greater than or equal to 30% of the larger of the first and second heights, that is, the height difference dh≥30%*max(hg1,hg2). Figure 11A and Figure 11B The analysis shows the case where the grating height difference dh ≥ 30% * max(hg1, hg2).
[0090] like Figure 11AAs shown, the grating region includes a first grating region and a second grating region. The first grating region has a first height hg1, and the second grating region has a second height hg2. The first height hg1 is less than the second height hg2. A blank region is disposed between the first grating region and the second grating region. The height of the blank region at the first end adjacent to the first grating region is between 0.7 and 1.3 times the first height hg1, and the height of the blank region at the second end adjacent to the second grating region is between 0.7 and 1.3 times the second height hg2. The height of the blank region varies between the height at the first end and the height at the second end. When a blank area is placed between two grating areas at different heights, if the height difference between the two grating areas is greater than 30% of the higher height, the height of the blank area can be varied. It can be stipulated that the height difference between each end of the blank area and the first and second grating areas does not exceed 30%, that is, the height of the first end is 0.7-1.3 times the first height, and the height of the second end is 0.7-1.3 times the second height. This ensures that even if the height difference between the two grating areas is large, there will be no severe ghosting at the junction of the blank area and the two grating areas.
[0091] Specifically, Figure 11A The diagram illustrates a structure where a blank area is set to a stepped, gradually changing height. The blank area can be set to a gradually changing height, ranging from 1.3hg2 to 0.7hg1, with a gradient number ≥ 1. Figure 11A The step height is shown as a gradual change.
[0092] like Figure 11B As shown, this diagram illustrates a structure where a blank area is set with a smoothly gradient height. The blank area can be set with a gradient height, ranging from 1.3hg2 to 0.7hg1, as... Figure 11B The height gradient shown is smooth.
[0093] It should be understood that Figure 11A -B and Figure 10A The difference with -C is that, in Figure 11A In the -B case, the height difference between the first and second grating regions on either side of the blank area is significant, exceeding 30% of the height of the higher grating region. At this point, if the height of the blank area is set to remain constant, i.e., as... Figure 10A Setting the top of the blank area to horizontal would potentially result in a height difference between the blank area and the first or second grating area at the left or right end exceeding 30% of the height of the corresponding grating area. Therefore, in Figure 11A In the case of -B, it is best to set the height of the blank area to be variable, such as step gradient or smooth gradient, and the height of both ends of the blank area should be specified to be between 0.7 and 1.3 times that of the adjacent raster area. This will ensure that the height difference of the blank area at either end will not exceed 30% of the height of the corresponding raster area.
[0094] Figure 12 A schematic diagram of an optical waveguide according to an embodiment of this application is shown.
[0095] like Figure 12 As shown, this illustrates the case where each grating section exhibits height modulation. The optical waveguide includes an optical waveguide substrate 1210 and a grating layer 1220. The grating layer 1220 includes a first grating region 1221, a second grating region 1222, and a blank region 1223. When the grating heights of the different sections are inconsistent, the height of the blank region 1223 is determined by the first grating region 1221 and the second grating region 1222 closest to the boundary.
[0096] like Figure 12 As shown, the grating region includes a first grating region 1221 and a second grating region 1222. The first grating region 1221 and the second grating region 1222 have varying heights. A blank region 1223 is disposed between the first grating region 1221 and the second grating region 1222. The end of the blank region 1223 immediately adjacent to the first grating region 1221 is designated as the first end, and the end of the blank region 1223 immediately adjacent to the second grating region 1222 is designated as the second end. The first grating region 1221 has a first height hg1 at the end immediately adjacent to the first end, and the second grating region 1222 has a second height hg2 at the end immediately adjacent to the second end. The first height hg1 is less than the second height hg2.
[0097] At this point, if the difference between the first height hg1 and the second height hg2 is less than or equal to 30% of the second height hg2, and the height of the blank area 1223 remains unchanged, then the height of the blank area 1223 is between 0.7 times the second height hg2 and 1.3 times the first height hg1. If the heights of the first and second grating areas are variable, then the height design of the blank area only needs to consider the heights of the grating areas immediately adjacent to the ends of the blank area. If the height difference between the ends of the first and second grating areas immediately adjacent to the blank area does not exceed 30%, then the height of the blank area can be specified to be between 0.7 times the second height and 1.3 times the first height, thereby ensuring that the height difference between the blank area and the boundary of the first or second grating area does not exceed 30%, thus reducing the ghosting phenomenon caused by the height difference. Alternatively, if the height of the blank area varies between the height of the first end and the height of the second end, then regardless of whether the difference between the first height hg1 and the second height hg2 is greater than or less than 30% of the second height hg2, the height of the first end should be between 0.7 and 1.3 times the first height hg1, and the height of the second end should be between 0.7 and 1.3 times the second height hg2. If the heights of the first and second grating regions vary, only the heights of their ends immediately adjacent to the blank area need to be considered. If the height of the blank area varies in this case, then it is only necessary to ensure that the height difference between the first and second ends of the blank area and the height of the end of the grating region immediately adjacent to the blank area does not exceed 30%, that is, the height of the first end should be 0.7-1.3 times the first height, and the height of the second end should be 0.7-1.3 times the second height. This ensures that no severe ghosting occurs at the boundary between the blank area and the two grating regions.
[0098] Figure 13 A schematic diagram of an optical waveguide according to an embodiment of this application is shown.
[0099] exist Figure 13 The diagram shows the filling between different raster zones. Specifically, Figure 13 A schematic diagram of the structure of a diffractive waveguide is shown. The waveguide includes a waveguide substrate 1310, a grating layer 1320, and a cover plate 1330 (or a second waveguide layer), with a dielectric 1340 filling the space between the grating layer 1320 and the cover plate 1330. The grating layer 1320 includes a first grating region 1321, a second grating region 1322, and a blank region 1323.
[0100] Figure 13 In the middle, the height of the blank area and Figures 9A to 12 The height variation pattern of the blank area in the illustrated embodiment is consistent.
[0101] The concepts, principles, and ideas of this application have been described in detail above with reference to specific embodiments (including examples and instances). Those skilled in the art should understand that the embodiments of this application are not limited to those given above. After reading this application, those skilled in the art can make any possible improvements, substitutions, and equivalents to the steps, methods, apparatus, and components in the above embodiments, and such improvements, substitutions, and equivalents should be considered to fall within the scope of this application. The scope of protection of this application is limited to the claims.
Claims
1. An optical waveguide, characterized in that, include: Optical waveguide substrate (310); A grating layer (320) is disposed on the surface of the optical waveguide substrate (310). The grating layer (320) includes a grating region and a blank region (224). The height of the blank region (224) is between 0.7 and 1.3 times the height of the grating region.
2. The optical waveguide according to claim 1, characterized in that, The height of the blank area (224) varies between 0.7 times and 1.3 times the height of the grating area.
3. The optical waveguide according to claim 2, characterized in that, The height of the blank area (224) varies continuously.
4. The optical waveguide according to claim 2, characterized in that, The height of the blank area (224) may vary in a stepped manner.
5. The optical waveguide according to claim 1, characterized in that, The height of the blank area (224) at the first end adjacent to the grating area is between 1 and 1.3 times the height of the grating area, and the height of the blank area (224) at the second end opposite to the first end is between 0.7 and 1 times the height of the grating area. The height of the blank area (224) gradually increases from the second end to the first end.
6. The optical waveguide according to claim 1, characterized in that, The grating region includes a first grating region (1221) and a second grating region (1222). The first grating region (1221) has a first height (hg1), and the second grating region (1222) has a second height (hg2). The first height (hg1) is less than the second height (hg2), and the difference between the first height (hg1) and the second height (hg2) is less than or equal to 30% of the second height (hg2). The blank area (224) is disposed between the first grating region (1221) and the second grating region (1222). The height of the blank area (224) is between 0.7 times the second height (hg2) and 1.3 times the first height (hg1).
7. The optical waveguide according to claim 1, characterized in that, The grating region includes a first grating region (1221) and a second grating region (1222). The first grating region (1221) has a first height (hg1), and the second grating region (1222) has a second height (hg2). The first height (hg1) is less than the second height (hg2). The blank region (224) is disposed between the first grating region (1221) and the second grating region (1222). The height of the blank region (224) at the first end adjacent to the first grating region (1221) is between 0.7 and 1.3 times the first height (hg1). The height of the blank region (224) at the second end adjacent to the second grating region (1222) is between 0.7 and 1.3 times the second height (hg2). The height of the blank region (224) varies between the height at the first end and the height at the second end.
8. The optical waveguide according to claim 1, characterized in that, The grating region includes a first grating region (1221) and a second grating region (1222). The first grating region (1221) and the second grating region (1222) have varying heights. A blank region (224) is disposed between the first grating region (1221) and the second grating region (1222). The end of the blank region (224) adjacent to the first grating region (1221) is the first end, and the end of the blank region (224) adjacent to the second grating region (1222) is the second end. The first grating region (1221) has a first height (hg1) at the end adjacent to the first end, and the second grating region (1222) has a second height (hg2) at the end adjacent to the second end. The first height (hg1) is less than the second height (hg2), and the difference between the first height (hg1) and the second height (hg2) is less than or equal to 30% of the second height (hg2). The height of the blank area (224) is between 0.7 times the second height (hg2) and 1.3 times the first height (hg1).
9. The optical waveguide according to claim 1, characterized in that, The grating region includes a first grating region (1221) and a second grating region (1222). The first grating region (1221) and the second grating region (1222) have varying heights. The blank region (224) is disposed between the first grating region (1221) and the second grating region (1222). The end of the blank region (224) adjacent to the first grating region (1221) is the first end, and the end of the blank region (224) adjacent to the second grating region (1222) is the second end. The first grating region (1221) has a first height (hg1) at the end adjacent to the first end, and the second grating region (1222) has a second height (hg2) at the end adjacent to the second end. The first height (hg1) is smaller than the second height (hg2). The height of the first end is between 0.7 and 1.3 times the first height (hg1), the height of the second end is between 0.7 and 1.3 times the second height (hg2), and the height of the blank area (224) varies between the height of the first end and the height of the second end.
10. An augmented reality display device, characterized in that, The optical waveguide includes any one of claims 1 to 9.