IP Library › Granted Patent US 12,613,419
Granted Patent B2
US 12,613,419 · App. 18/519,659 · Granted Apr 28, 2026

Diffractive waveguide apparatus, near-eye display device, and manufacturing method for diffractive waveguide apparatus

Inventor: Guang Zheng (Dongguan, CN)
Assignee: GUANGDONG OPPO MOBILE TELECOMMUNICATIONS CORP., LTD.
G02B27/0172G02B6/34G02B2027/0123
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Quick Facts
Patent No.
US 12,613,419
App. No.
18/519,659
Granted
Apr 28, 2026
Kind
B2
Abstract

A diffractive light waveguide apparatus, a near-eye display device, and a manufacturing method for a diffractive light waveguide apparatus are provided. The diffractive light waveguide apparatus includes a waveguide substrate and a grating structure. The grating structure is arranged on a surface of the waveguide substrate and includes multiple grating units, the multiple grating units have a first period in a first direction and a second period in a second direction, and the second direction is different from the first direction. The first period and the second period are adjustable to cause a two-dimensional pupil expansion angle of the grating structure to be 180°.

Claims (35)

1 . A diffractive waveguide apparatus, comprising:

a waveguide substrate; and

a grating structure, arranged on a surface of the waveguide substrate, and comprising a plurality of grating units; wherein the plurality of grating units have a first period in a first direction and a second period in a second direction, the second direction is different from the first direction; the first period and the second period are adjustable to cause a two-dimensional pupil expansion angle of the grating structure to be 180°;

wherein the diffractive waveguide apparatus satisfies: in a field of view distribution of a normalized k-space of the grating structure, a horizontal axis is λk x /2π, a vertical axis is λk y /2π; a radius of an inner circle is an environmental refractive index, and a radius of an outer circle is a refractive index of a waveguide substrate, the inner circle and the outer circle being concentric; a center field of view is located in the inner circle, fields of view with a (0,0) order diffraction and a (−1, ±1) order diffraction are located in a ring formed between the inner circle and the outer circle, and fields of view with a (0, ±1) order diffraction are located outside the outer circle to avoid the (0, ±1) order diffraction; a pupil expansion angle of the center field of view is 180°, wherein λ is a wavelength, k x is a grating vector along a x-direction in the reciprocal space, and k y is grating vector along a y-direction in the reciprocal space.

2 . The diffractive waveguide apparatus as claimed in claim 1 , wherein a range of an included angle θ between the first direction and the second direction is: 80°≤θ≤100°.

3 . The diffractive waveguide apparatus as claimed in claim 1 , wherein a mode length of the first period is equal to N times a mode length of the second period, and 0.5≤N≤2.

4 . The diffractive waveguide apparatus as claimed in claim 1 , wherein the plurality of grating units are arrayed into a rectangular region, a centerline, parallel to the first direction, of the rectangular region is served as a symmetrical axis of the rectangular region, and duty cycles of the plurality of grating units, on both opposite sides of the centerline, are adjusted to be different.

5 . The diffractive waveguide apparatus as claimed in claim 4 , wherein radial sizes of the plurality of grating units gradually increase from the centerline along the second direction.

6 . The diffractive waveguide apparatus as claimed in claim 4 , wherein radial sizes of the plurality of grating units gradually increase along the first direction, and gradually increase from the centerline along the second direction.

7 . The diffractive waveguide apparatus as claimed in claim 4 , wherein heights of the plurality of grating units gradually increase or decrease from the centerline towards two opposite sides along the second direction.

8 . The diffractive waveguide apparatus as claimed in claim 1 , wherein the surface of the waveguide substrate is a step surface, and the step surface comprises a first step surface in a middle and two second step surfaces on two opposite sides of the first step surface; the plurality of grating units are arranged on the first step surface and the two second step surfaces, and end surfaces, away from the surface, of the plurality of grating units are coplanar.

9 . The diffractive waveguide apparatus as claimed in claim 8 , wherein a height of each grating unit on the first step surface is less than a height of each grating unit on each of the two second step surfaces.

10 . The diffractive waveguide apparatus as claimed in claim 1 , wherein a first mode length of the first period is 260 nm to 500 nm, and a second mode length of the second period is 260 nm to 500 nm.

11 . The diffractive waveguide apparatus as claimed in claim 1 , wherein the grating structure comprises an input coupled grating and an output coupled grating that are arranged on the waveguide substrate; the input coupled grating is configured to couple a light in the waveguide substrate; the output coupled grating comprises several of the plurality of grating units, and the output coupled grating is configured to receive a light totally reflected by the waveguide substrate, perform a two-dimensional pupil expansion on the light, and couple the light out of the waveguide substrate.

12 . The diffractive waveguide apparatus as claimed in claim 11 , wherein the waveguide substrate comprises a first surface and a second surface arranged opposite to each other, and the input coupled grating and the coupled grating are both arranged on the first surface or the second surface; or

the input coupled grating is arranged on one of the first surface and the second surface, and the output coupled grating is arranged on the other of the first surface and the second surface.

13 . The diffractive waveguide apparatus as claimed in claim 11 , wherein an included angle, between the first direction and the second direction, of the several of the plurality of grating units of the output coupled grating is 90°; an absolute value of the mode length of the first period is equal to N times an absolute value of the mode length of the second period, and a range of N is 0.5≤N≤2; an output coupled grating region of the output coupled grating is rectangular in shape, and the two-dimensional pupil expansion angle of the output coupled grating is 180°.

14 . The diffractive waveguide apparatus as claimed in claim 11 , wherein an included angle, between the first direction and the second direction, of the several of the plurality of grating units of the output coupled grating is 90°, an absolute value of the mode length of the first period is equal to an absolute value of the mode length of the second period; an output coupled grating region of the output coupled grating is rectangular in shape, and the two-dimensional pupil expansion angle of the output coupled grating is 180°.

15 . The diffractive waveguide apparatus as claimed in claim 11 , wherein the output coupled grating is integrated with the waveguide substrate; or

a projection of the input coupled grating in the first direction is located in a region of the output coupled grating; or a projection of the input coupled grating in the second direction is located in the region of the output coupled grating.

16 . A near-eye display device, comprising a diffractive waveguide apparatus; wherein the diffractive waveguide apparatus comprises:

a waveguide substrate; and

a grating structure, arranged on a surface of the waveguide substrate, and comprising a plurality of grating units; wherein the plurality of grating units have a first period in a first direction and a second period in a second direction, the second direction is different from the first direction; the first period and the second period are adjustable to cause a two-dimensional pupil expansion angle of the grating structure to be 180°;

wherein the diffractive waveguide apparatus satisfies: in a field of view distribution of a normalized k-space of the grating structure, a horizontal axis is λk x /2π, a vertical axis is λk y /2π; a radius of an inner circle is an environmental refractive index, and a radius of an outer circle is a refractive index of a waveguide substrate, the inner circle and the outer circle being concentric; a center field of view is located in the inner circle, fields of view with a (0,0) order diffraction and a (−1, ±1) order diffraction are located in a ring formed between the inner circle and the outer circle, and fields of view with a (0, ±1) order diffraction are located outside the outer circle to avoid the (0, ±1) order diffraction; a pupil expansion angle of the center field of view is 180°; wherein λ is a wavelength, k x is a grating vector along a x-direction in the reciprocal space, and k y is grating vector along a y-direction in the reciprocal space;

wherein the near-eye display device comprises:

a wearing frame, comprising two viewing window regions spaced apart from each other; wherein the diffractive waveguide apparatus is arranged on each of at least one of the two viewing window regions.

17 . The near-eye display device as claimed in claim 16 , comprising:

a wearing holder, connected to the wearing frame;

an image source, arranged on a side of the waveguide substrate, and configured to generate a light based on an image to be display; and

an optical lens component, arranged between the image source and an output coupled grating of the diffractive waveguide apparatus, and configured to guide the light into the input coupled grating according to a predetermined manner; wherein at least one of the image source and the optical lens component is arranged at a connection of the wearing frame and the wearing holder.

18 . A manufacturing method for a diffractive waveguide apparatus, comprising:

S 1 : providing a waveguide substrate; and

S 2 : forming a grating structure on a surface of the waveguide substrate; wherein the grating structure comprises a plurality of grating units, the plurality of grating units have a first period in a first direction and a second period in a second direction, the second direction is different from the first direction, the first period and the second period are adjustable to cause a two-dimensional pupil expansion angle of the grating structure to be 180°;

wherein the diffractive waveguide apparatus satisfies: in a field of view distribution of a normalized k-space of the grating structure, a horizontal axis is λk x /2π, a vertical axis is λk y /2π; a radius of an inner circle is an environmental refractive index, and a radius of an outer circle is a refractive index of a waveguide substrate, the inner circle and the outer circle being concentric; a center field of view is located in the inner circle, fields of view with a (0,0) order diffraction and a (−1, ±1) order diffraction are located in a ring formed between the inner circle and the outer circle, and fields of view with a (0, ±1) order diffraction are located outside the outer circle to avoid the (0, ±1) order diffraction; a pupil expansion angle of the center field of view is 180°; wherein λ is a wavelength, k x is a grating vector along a x-direction in the reciprocal space, and k y is grating vector along a y-direction in the reciprocal space.

19 . The manufacturing method as claimed in claim 18 , wherein at S 2 , the grating structure is formed on the surface of the waveguide substrate by one of nanoimprinting, casting, molding, and injection molding.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 27, 2023
From: ZHENG, GUANG
To: GUANGDONG OPPO MOBILE TELECOMMUNICATIONS CORP., LTD.
Reel/Frame 065669/0665 →
Priority Claims (1)
CN 202110585751.4 · May 27, 2021 · national
Continuity (2)
Continuation PCTCN2022085887 · Apr 8, 2022
Related Publication 20240094545A1 · Mar 21, 2024
References Cited (19)
US 10409059B2 · Mason · 2019 [cited by examiner]
US 20200209630A1 · Schultz · 2020 [cited by examiner]
US 20200264367A1 · Huang et al. · 2020 [cited by applicant]
US 20210199970A1 · Huang · 2021 [cited by examiner]
CN 209167585U · 2019 [cited by applicant]
CN 111065953A · 2020 [cited by applicant]
CN 111175881A · 2020 [cited by applicant]
CN 111373297A · 2020 [cited by applicant]
CN 111552030A · 2020 [cited by applicant]
CN 111812841A · 2020 [cited by applicant]
CN 112630969A · 2021 [cited by applicant]
CN 113156581A · 2021 [cited by applicant]
CN 214623106U · 2021 [cited by applicant]
WO 2022247487A1 · 2022 [cited by applicant]
Notification to Grant Patent Right for Invention, Chinese Application No. 202121171086.6, mailed Oct. 15, 2021. [cited by applicant]
International Search Report, International Application No. PCT/CN2022/085887, mailed Jun. 28, 2022. [cited by applicant]
Written Opinion of the International Searching Authority in International Application No. PCT/CN2022/085887, mailed Jun. 28, 2022, with machine English translation provided by WIPO and by applicant's foreign counsel. [cited by applicant]
Chinese First Office Action in Chinese Patent Application No. 202110585751.4, mailed Dec. 30, 2024. [cited by applicant]
Rejection decision in the corresponding Chinese Patent Application No. 202110585751.4, issued on Jun. 14, 2025. [cited by applicant]