IP Library › Granted Patent US 12,547,006
Granted Patent B2
US 12,547,006 · App. 18/976,111 · Granted Feb 10, 2026

Waveguide and diffraction grating for augmented reality or virtual reality display

Inventors: Alexandra Crai (Abingdon, GB); Ciaran Phelan (Wallingford, GB); Mohmed Salim Ibrahim Valera (Sutton Coldfield, GB); David Nicholas Crosby (Oxford, GB)
Assignee: Snap Inc.
G02B27/0172G02B5/1819G02B27/0037G06T19/006
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Quick Facts
Patent No.
US 12,547,006
App. No.
18/976,111
Granted
Feb 10, 2026
Kind
B2
Abstract

A waveguide for use in a virtual reality, VR, or augmented reality, AR, device, is disclosed. The waveguide comprising an input region configured to couple light into the waveguide so that it propagates under total internal reflection (TIR) within the waveguide, and an output region comprising optical structures configured to receive image bearing light from the input region. The output region comprises a plurality of zones having different diffraction to each other, the plurality of zones comprising diffraction efficiencies so as to reduce rainbow artefacts.

Claims (91)

1 . A waveguide comprising:

an output region to:

receive light propagating under total internal reflection (TIR) within the waveguide; and

provide diffractive interactions for the light, comprising:

a first diffractive interaction that outcouples light that is propagating in a first direction out of the waveguide toward a viewer; and

a second diffractive interaction that outcouples light that is propagating in a second direction different from the first direction out of the waveguide toward the viewer;

the output region comprising:

a first zone having non-zero diffraction efficiencies for the first and second diffractive interactions; and

a second zone, located at a position in the second direction with respect to the first zone, and having non-zero diffraction efficiencies for the first and second diffractive interactions,

the diffraction efficiencies of the first zone and second zone being configured to reduce rainbow artefacts,

each zone comprising:

a first rectangular periodic array of optical structures arranged on a plane defined by the first and second directions, a period of the first rectangular periodic array being defined by a spacing between neighboring optical structures of the first rectangular periodic array, the first rectangular periodic array forming a first 2D lattice with rectangular symmetry; and

a second rectangular periodic array of optical structures arranged on the plane, a period of the second rectangular periodic array being defined by a spacing between neighboring optical structures of the second rectangular periodic array, the second rectangular periodic array forming a second 2D lattice with rectangular symmetry;

the first rectangular periodic array being overlaid on the second rectangular periodic array in the plane such that the arrays are spatially offset from one another on the plane;

the first rectangular periodic array being offset from the second rectangular periodic array by a factor which is different from half the period of the first rectangular periodic array and different from half the period of the second rectangular periodic array.

2 . The waveguide of claim 1 , wherein:

the second direction is perpendicular to the first direction.

3 . The waveguide of claim 1 , wherein:

the diffractive interactions further comprise:

a third diffractive interaction that turns light such that it is caused to propagate under TIR within the waveguide in a direction that is different from a direction in which it is propagating prior to the third diffractive interaction; and

the first zone and second zone have non-zero diffraction efficiencies for the third diffractive interaction.

4 . The waveguide of claim 3 , wherein:

the third diffractive interaction turns the light to propagate in a direction that is perpendicular to the direction in which it is propagating prior to the third diffractive interaction.

5 . The waveguide of claim 3 , wherein:

the output region further comprises a third zone that receives light propagating under TIR within the waveguide before interacting with the first zone or the second zone, the third zone having a diffraction efficiency of the third diffractive interaction that is higher than the diffraction efficiency of both the first and second diffractive interactions of the third zone;

the third zone is located in the first direction from the first zone; and

the first zone has a diffraction efficiency of the second diffractive interaction that is greater than a diffraction efficiency of the second diffractive interaction of the third zone.

6 . The waveguide of claim 5 , wherein:

the diffraction efficiency of the first diffractive interaction in the second zone is greater than:

the diffraction efficiency of the first diffractive interaction in the first zone; and

the diffraction efficiency of the first diffractive interaction in the third zone.

7 . The waveguide of claim 5 , wherein:

the diffraction efficiency of the second diffractive interaction in the second zone is greater than:

the diffraction efficiency of the second diffractive interaction in the first zone; and

the diffraction efficiency of the second diffractive interaction in the third zone.

8 . The waveguide of claim 1 , wherein:

the second zone has a diffraction efficiency of the first diffractive interaction that is greater than the diffraction efficiency of the first diffractive interaction in the first zone; and

the second zone has a diffraction efficiency of the second diffractive interaction that is less than the diffraction efficiency of the second diffractive interaction in the first zone.

9 . The waveguide of claim 1 , wherein:

the second zone has a diffraction efficiency of the second diffractive interaction that is greater than the diffraction efficiency of the first diffractive interaction in the second zone; and

the second zone has a diffraction efficiency of the first diffractive interaction that is less than the diffraction efficiency of the first diffractive interaction in the first zone.

10 . The waveguide of claim 1 , wherein:

the second zone has a diffraction efficiency of the first diffractive interaction that is greater than the diffraction efficiency of the second diffractive interaction in the second zone; and

the second zone comprises optical structures that are continuous along the second direction.

11 . The waveguide of claim 1 , wherein:

the second zone has a diffraction efficiency of the second diffractive interaction that is greater than the diffraction efficiency of the first diffractive interaction in the second zone; and

the second zone comprises optical structures that are continuous along the first direction.

12 . The waveguide of claim 1 , wherein: the second zone has a diffraction efficiency of the first diffractive interaction that is greater than the diffraction efficiency of the second diffractive interaction in the second zone; and the second zone comprises the first and second rectangular periodic arrays arranged such that: the first rectangular periodic array is offset from the second rectangular periodic array in the first direction by a factor which is different from each of: the period of the first rectangular periodic array; the period of the second rectangular periodic array; half the period of the first rectangular periodic array; and half the period of the second rectangular periodic array, such that the optical structures of the first and second rectangular periodic arrays form a continuous structure along the second direction.

13 . The waveguide of claim 1 , wherein:

the second zone has a diffraction efficiency of the second diffractive interaction that is greater than the diffraction efficiency of the first diffractive interaction in the second zone; and the second zone comprises the first and second rectangular periodic arrays arranged such that:

the first rectangular periodic array is offset from the second rectangular periodic array in the second direction by a factor which is different from each of:

the period of the first rectangular periodic array;

the period of the second rectangular periodic array;

half the period of the first rectangular periodic array; and half the period of the second rectangular periodic array,

such that the optical structures of the first and second rectangular periodic array form a continuous structure along the first direction.

14 . The waveguide of claim 1 , wherein: the first zone comprises optical structures arranged such that:

the first rectangular periodic array is offset from the second rectangular periodic array by a factor which is different from half the period of the first rectangular periodic array along the second direction and is different from half the period of the second rectangular periodic array along the second direction; and

the first rectangular periodic array is offset from the second rectangular periodic array by half the period of the first or second rectangular periodic array along the first direction.

15 . The waveguide of claim 1 , wherein: the diffractive interactions further comprise: a third diffractive interaction that turns light such that it is caused to propagate under TIR within the waveguide in a direction that is different from a direction in which it is propagating prior to the third diffractive interaction; the first zone and second zone have non-zero diffraction efficiencies for the third diffractive interaction; the output region further comprises a third zone that receives light propagating under TIR within the waveguide before interacting with the first zone or the second zone, the third zone having a diffraction efficiency of the third diffractive interaction that is higher than the diffraction efficiency of both the first and second diffractive interactions of the third zone; the third zone is located in the first direction from the first zone; the first zone has a diffraction efficiency of the second diffractive interaction that is greater than a diffraction efficiency of the second diffractive interaction of the third zone; and the third zone comprises optical structures arranged such that the first rectangular periodic array is: offset from the second rectangular periodic array along the second direction by a factor which is different from half the period of the first rectangular periodic array and different from half the period of the second rectangular periodic array; and offset from the second rectangular periodic array along the first direction by half the period of the first rectangular periodic array or half the period of the second rectangular periodic array.

16 . The waveguide of claim 15 , wherein the factor by which the first rectangular periodic array is offset from the second rectangular periodic array of optical structures along the second direction in the third zone is smaller than the factor by which the first rectangular periodic array is offset from the second rectangular periodic array along the second direction in the first zone.

17 . The waveguide of claim 1 , wherein the second zone comprises optical structures each have a cross sectional area in a plane defined by the first and second directions that is greater than a cross sectional area in the plane of optical structures of the first zone.

18 . An augmented reality or virtual reality display comprising a waveguide, the waveguide comprising:

an output region to:

receive light propagating under total internal reflection (TIR) within the waveguide; and

provide diffractive interactions for the light, comprising:

a first diffractive interaction that outcouples light that is propagating in a first direction out of the waveguide toward a viewer; and

a second diffractive interaction that outcouples light that is propagating in a second direction different from the first direction out of the waveguide toward the viewer;

the output region comprising:

a first zone having non-zero diffraction efficiencies for the first and second diffractive interactions; and

a second zone, located at a position in the second direction with respect to the first zone, and having non-zero diffraction efficiencies for the first and second diffractive interactions,

the diffraction efficiencies of the first zone and second zone being configured to reduce rainbow artefacts,

each zone comprising:

a first rectangular periodic array of optical structures arranged on a plane defined by the first and second directions, a period of the first rectangular periodic array being defined by a spacing between neighboring optical structures of the first rectangular periodic array, the first rectangular periodic array forming a first 2 D lattice with rectangular symmetry; and

a second rectangular periodic array of optical structures arranged on the plane, a period of the second rectangular periodic array being defined by a spacing between neighboring optical structures of the second rectangular periodic array, the second rectangular periodic array forming a second 2 D lattice with rectangular symmetry;

the first rectangular periodic array being overlaid on the second rectangular periodic array in the plane such that the arrays are spatially offset from one another on the plane;

the first rectangular periodic array being offset from the second rectangular periodic array by a factor which is different from half the period of the first rectangular periodic array and different from half the period of the second rectangular periodic array.

19 . A method comprising:

receiving light propagating under total internal reflection (TIR) within a waveguide at a first zone and a second zone of an output region of the waveguide; and

providing a first diffractive interaction and a second diffractive interaction for the light at the first zone and second zone such that:

the first zone has non-zero diffraction efficiencies for the first diffractive interaction and second diffractive interaction;

the second zone, located at a position in a second direction, different from the first direction, with respect to the first zone, has non-zero diffraction efficiencies for the first diffractive interaction and second diffractive interaction;

the first diffractive interaction outcouples light that is propagating in a first direction out of the waveguide toward a viewer; and

the second diffractive interaction outcouples light that is propagating in the second direction out of the waveguide toward the viewer;

the diffraction efficiencies of the first zone and second zone being configured to reduce rainbow artefacts,

each zone comprising:

a first rectangular periodic array of optical structures arranged on a plane defined by the first and second directions, a period of the first rectangular periodic array being defined by a spacing between neighboring optical structures of the first rectangular periodic array, the first rectangular periodic array forming a first 2 D lattice with rectangular symmetry; and

a second rectangular periodic array of optical structures arranged on the plane, a period of the second rectangular periodic array being defined by a spacing between neighboring optical structures of the second rectangular periodic array, the second rectangular periodic array forming a second 2 D lattice with rectangular symmetry;

the first rectangular periodic array being overlaid on the second rectangular periodic array in the plane such that the arrays are spatially offset from one another on the plane;

the first rectangular periodic array being offset from the second rectangular periodic array by a factor which is different from half the period of the first rectangular periodic array and different from half the period of the second rectangular periodic array.

20 . The method of claim 19 , wherein:

the second direction is perpendicular to the first direction.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 17, 2024
From: CRAI, ALEXANDRA; PHELAN, CIARAN; VALERA, MOHMED SALIM IBRAHIM; CROSBY, DAVID NICHOLAS
To: SNAP INC.
Reel/Frame 069607/0342 →
Priority Claims (1)
EP 21178594 · Jun 9, 2021 · regional
Continuity (2)
Continuation 18563733
Related Publication 20250102808A1 · Mar 27, 2025
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