IP Library Granted Patent US 10,509,231
Granted Patent B1
US 10,509,231 · App. 16/531,735 · Granted Dec 17, 2019

Opposed gratings in a waveguide display

Inventors: Hee Yoon Lee (Kirkland, WA); Wanli Chi (Sammamish, WA); Pasi Saarikko (Kirkland, WA)
Assignee: Facebook Technologies, LLC
G02B27/0172G02B6/003G02B6/0026G02B6/0035G02F1/29G02B2027/011G02B2027/014G02B2027/0123G02B2027/0178
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Quick Facts
Patent No.
US 10,509,231
App. No.
16/531,735
Granted
Dec 17, 2019
Kind
B1
Abstract

A waveguide display includes a light source assembly, an output waveguide, and a controller. The light source assembly emits an image light that propagates along an input wave vector. The output waveguide includes a waveguide body with two opposite surfaces. The output waveguide includes a first grating receiving an image light propagating along the input wave vector, a second grating, and a third grating positioned opposite to the second grating and outputting an expanded image light with wave vectors matching the input wave vector. The controller controls the illumination of the light source assembly to form a two-dimensional image.

Claims (45)

1. An output waveguide comprising:

one or more gratings configured to couple image light propagating along an input wave vector into a waveguide body that includes a first surface and a second surface that is opposite to the first surface;

a first grating coupled to the first surface of the waveguide body; and

a second grating coupled to the second surface of the waveguide body and positioned opposite to the first grating, at least one of the first grating and the second grating configured to output the image light to an eyebox, the output image light propagating along an output wave vector that matches the input wave vector, wherein wave vectors associated with the one or more gratings, the first grating, and the second grating include at least two wave vectors that have different magnitudes.

2. The output waveguide of claim 1 , wherein the one or more grating, the first grating, and the second grating are associated with respective wave vectors, and a vector sum of the wave vectors equals zero.

3. The output waveguide of claim 1 , wherein the one or more gratings include a third grating coupled to the first surface and a fourth grating on the second surface.

4. The output waveguide of claim 1 , wherein the wave vectors associated with the one or more gratings, the first grating, and the second grating all have different magnitudes.

5. The output waveguide of claim 1 , wherein the image light within the waveguide body is diffracted by the first grating, the second grating, and then again by the first grating to output the image light from the waveguide body.

6. The output waveguide of claim 1 , wherein the image light has two paths to outcouple from the waveguide body, a first path where the image light within the waveguide body is diffracted by the first grating and then by the second grating to output the image light from the waveguide body, and a second path where the image light within the waveguide body is diffracted by the second grating and then by the first grating to output the image light from the waveguide body.

7. The output waveguide of claim 1 , further comprises:

a third grating coupled to the first surface of the waveguide body, wherein the image light has two paths to outcouple from the waveguide body, a first path where the image light within the waveguide body is diffracted by the first grating and then by the third grating to output the image light from the waveguide body, and a second path where the image light within the waveguide body is diffracted by the second grating and then by the third grating to output the image light from the waveguide body.

8. The output waveguide of claim 1 , further comprises:

a third grating coupled to the first surface of the waveguide body; and

a fourth grating coupled to the second surface of the waveguide body,

wherein the image light has two paths to outcouple from the waveguide body, a first path where the image light within the waveguide body is diffracted by the first grating and then by the second grating to output the image light from the waveguide body, and a second path where the image light within the waveguide body is diffracted by the third grating and then by the fourth grating to output the image light from the waveguide body.

9. The output waveguide of claim 1 , wherein the output waveguide is part of a near-eye display.

10. A waveguide display comprising:

a light source configured to emit image light in accordance with display instructions, the emitted image light propagates along an input wave vector;

an output waveguide comprising:

one or more gratings configured to couple the image light propagating into a waveguide body that includes a first surface and a second surface that is opposite to the first surface,

a first grating coupled to the first surface of the waveguide body, and

a second grating coupled to the second surface of the waveguide body and positioned opposite to the first grating, at least one of the first grating and the second grating configured to output the image light to an eyebox, the output image light propagating along an output wave vector that matches the input wave vector, wherein wave vectors associated with the one or more gratings, the first grating, and the second grating include at least two wave vectors that have different magnitudes; and

a controller configured to generate the display instructions and provide the display instructions to the light source.

11. The waveguide display of claim 10 , wherein the one or more gratings, the first grating, and the second grating are associated with respective wave vectors, and a vector sum of the wave vectors equals zero.

12. The waveguide display of claim 10 , wherein the one or more gratings include a third grating coupled to the first surface and a fourth grating on the second surface.

13. The waveguide display of claim 10 , wherein the wave vectors associated with the one or more gratings, the first grating, and the second grating all have different magnitudes.

14. The waveguide display of claim 10 , wherein the image light within the waveguide body is diffracted by the first grating, the second grating, and then again by the first grating to output the image light from the waveguide body.

15. The waveguide display of claim 10 , wherein the image light has two paths to outcouple from the waveguide body, a first path where the image light within the waveguide body is diffracted by the first grating and then by the second grating to output the image light from the waveguide body, and a second path where the image light within the waveguide body is diffracted by the second grating and then by the first grating to output the image light from the waveguide body.

16. The waveguide display of claim 10 , further comprises:

a third grating coupled to the first surface of the waveguide body, wherein the image light has two paths to outcouple from the waveguide body, a first path where the image light within the waveguide body is diffracted by the first grating and then by the third grating to output the image light from the waveguide body, and a second path where the image light within the waveguide body is diffracted by the second grating and then by the third grating to output the image light from the waveguide body.

17. The waveguide display of claim 10 , further comprises:

a third grating coupled to the first surface of the waveguide body; and

a fourth grating coupled to the second surface of the waveguide body,

wherein the image light has two paths to outcouple from the waveguide body, a first path where the image light within the waveguide body is diffracted by the first grating and then by the second grating to output the image light from the waveguide body, and a second path where the image light within the waveguide body is diffracted by the third grating and then by the fourth grating to output the image light from the waveguide body.

18. The waveguide display of claim 10 , wherein the image light output from the output waveguide is monochromatic and in a first color band, and the waveguide display is part of a polychromatic display that includes at least one other waveguide display that outputs image light that is monochromatic and in a second color band that is different than the first color band.

19. The waveguide display of claim 10 , wherein the waveguide display is part of a near-eye display.

20. A near-eye display (NED) comprising:

a frame;

a waveguide display comprising:

a plurality of light sources configured to emit image light in accordance with display instructions, the emitted image light propagates along an input wave vector, and

an output waveguide comprising:

one or more gratings configured to couple the image light propagating into a waveguide body that includes a first surface and a second surface that is opposite to the first surface,

a first grating coupled to the first surface of the waveguide body, and

a second grating coupled to the second surface of the waveguide body and positioned opposite to the first grating, at least one of the first grating and the second grating configured to output the image light to an eyebox, the output image light propagating along an output wave vector that matches the input wave vector, wherein wave vectors associated with the one or more gratings, the first grating, and the second grating include at least two wave vectors that have different magnitudes; and

a controller configured to generate the display instructions and provide the display instructions to the light sources.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 15, 2025
From: LEE, HEE YOON; CHI, WANLI; SAARIKKO, PASI
To: OCULUS VR, LLC
Reel/Frame 072252/0016 →
CHANGE OF NAME Recorded Sep 15, 2025
From: OCULUS VR, LLC
To: FACEBOOK TECHNOLOGIES, LLC
Reel/Frame 072718/0626 →
CHANGE OF NAME Recorded Jun 8, 2022
From: FACEBOOK TECHNOLOGIES, LLC
To: META PLATFORMS TECHNOLOGIES, LLC
Reel/Frame 060315/0224 →
Continuity (2)
Continuation 15667235 · Aug 2, 2017
Provisional Application 62406464 · Oct 11, 2016