IP Library Granted Patent US 12704721
Granted Patent B2
US 12704721 · App. 17/769,019 · Granted Aug 11, 2026

Optical combiners with improved efficiency and uniformity

Inventors: Shreyas Potnis (Kitchener, CA); Timothy Paul Bodiya (Toronto, CA)
Assignee: GOOGLE LLC
G02B27/0172G02B27/4272G02B2027/0178
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Quick Facts
Patent No.
US 12704721
App. No.
17/769,019
Granted
Aug 11, 2026
Kind
B2
Abstract

Systems, devices, and methods for directing display light employ one or more optical combiners that include recycle optics such as diffraction gratings, which can receive wasted display light travelling in a volume of an optical combiner, and redirect the wasted display light towards other optics so the wasted display light may be effectively used to produce a display. The optical combiners may also include a uniformization optic which can redistribute non-uniform display light, to produce a more uniform display, which in turn enables higher efficiency optics to be used.

Claims (38)

1 . An optical combiner comprising:

an incoupler optic to receive display light from outside of the optical combiner and redirect the display light to travel in a volume of the optical combiner;

a uniformization optic to receive one or more spatially separated portions of the display light propagating towards an outcoupler region comprising an outcoupler optic, and for each the received one or more spatially separated portions of display light, internally within the uniformization optic direct a sub-portion of that spatially separated portion of display light away from the outcoupler optic within the volume of the optical combiner, and subsequently internally within the uniformization optic redirect that same sub-portion of display light to travel again towards the outcoupler optic within the volume of the optical combiner before delivering the sub-portion as a portion of the display light to the outcoupler optic;

wherein the outcoupler optic is to receive the display light from the uniformization optic, redirect a first portion of the received display light to exit the volume of the optical combiner, and allow a second portion of the received display light to pass through the outcoupler region without being redirected to exit the volume of the optical combiner; and

a first recycle optic to receive the second portion of the display light and redirect the second portion of the display light to travel in the volume of the optical combiner back towards the outcoupler region.

2 . The optical combiner of claim 1 , further comprising an expander region to receive display light from the incoupler optic, the expander region including an expander optic to redirect display light received from the incoupler optic towards the outcoupler region.

3 . The optical combiner of claim 2 , wherein the incoupler optic is to redirect a third portion of display light towards the expander region, and to redirect a fourth portion of display light away from the expander region, the optical combiner further comprising a second recycle optic to receive the fourth portion of display light, and to redirect the fourth portion of display light towards the expander region.

4 . The optical combiner of claim 2 , wherein the expander optic is to redirect a third portion of display light towards the outcoupler region, and to allow a fourth portion of display light to pass through the expander region without being redirected towards the outcoupler region, wherein the optical combiner further comprises:

a second recycle optic to receive the fourth portion of display light which passes through the expander region without being redirected towards the outcoupler region, and to redirect the fourth portion of display light towards the expander region, the expander optic to redirect the fourth portion of display light from the second recycle optic away from the outcoupler region; and

a third recycle optic to receive the fourth portion of display light redirected away from the outcoupler region by the expander optic, and to redirect the fourth portion of display light towards the outcoupler region.

5 . The optical combiner of claim 1 , wherein the incoupler optic, the outcoupler optic, and the first recycle optic are surface relief gratings.

6 . The optical combiner of claim 1 , wherein the incoupler optic, the outcoupler optic, and the first recycle optic are holograms.

7 . The optical combiner of claim 1 , wherein the outcoupler optic is an optical grating, the first recycle optic is an optical grating, and the first recycle optic has a period which is half of a period of the outcoupler optic.

8 . The optical combiner of claim 1 , wherein the outcoupler optic is a two-dimensional optical grating to receive display light travelling in a first direction in the volume of the optical combiner, redirect some of the display light travelling in the first direction in the volume of the optical combiner to travel through the volume of the optical combiner in a second direction non-parallel to the first direction, and redirect some of the display light travelling in the second direction through the volume of the optical combiner to exit the volume of the optical combiner.

9 . The optical combiner of claim 8 , wherein at least some of the display light travelling in the first direction in the volume of the optical combiner is to pass through the outcoupler region without being redirected to travel in the second direction, at least some of the display light travelling in the second direction is to pass through the outcoupler region without being redirected to exit the volume of the optical combiner, the first recycle optic to receive the display light travelling in the second direction which passes through the outcoupler region and redirect the received display light towards the outcoupler region.

10 . The optical combiner of claim 1 , wherein the outcoupler optic and the first recycle optic are immediately adjacent to each other.

11 . The optical combiner of claim 1 , wherein the outcoupler optic and the first recycle optic are spatially separated from each other by a gap.

12 . An optical combiner comprising:

an incoupler optic to receive display light from outside of the optical combiner and redirect the display light to travel in a volume of the optical combiner;

a uniformization optic to receive one or more spatially separated portions of the display light propagating towards an outcoupler optic, and for each the received one or more spatially separated portions of display light, internally within the uniformization optic direct a sub-portion of that spatially separated portion of display light away from the outcoupler optic within the volume of the optical combiner, and subsequently internally within the uniformization optic redirect that same sub-portion of display light to travel again towards the outcoupler optic within the volume of the optical combiner before delivering the sub-portion as a portion of the display light to the outcoupler optic;

an outcoupler optic to receive the display light from the uniformization optic and redirect the received display light to exit the volume of the optical combiner; and

a recycle optic to receive display light travelling in the volume of the optical combiner in a direction away from the outcoupler optic, and redirect the display light travelling in the volume of the optical combiner in a direction away from the outcoupler optic towards the outcoupler optic.

13 . The optical combiner of claim 12 , wherein the outcoupler optic is positioned laterally between the incoupler optic and the recycle optic.

14 . The optical combiner of claim 12 , wherein the incoupler optic is positioned laterally between the recycle optic and the outcoupler optic.

15 . The optical combiner of claim 12 , further comprising an expander optic to receive display light from the incoupler optic, the expander optic to redirect the received display light towards the outcoupler optic.

16 . The optical combiner of claim 15 , wherein the expander optic is positioned laterally between the recycle optic and the outcoupler optic.

17 . An optical combiner comprising:

an incoupler optic to receive display light from outside of the optical combiner and redirect the display light to travel in a first direction in a volume of the optical combiner;

an expander optic to receive display light travelling in the first direction in the volume of the optical combiner and redirect the display light to travel in a second direction in the volume of the optical combiner as a plurality of spatially separated portions of display light, the second direction non-parallel to the first direction;

a uniformization optic to receive at least one of the spatially separated portions of display light travelling in the second direction in the volume of the optical combiner, and for each of the received spatially separated portion of display light, to internally within the uniformization optic redirect a sub-portion of that spatially separated portion of display light to travel in the first direction within the volume of the optical combiner, and subsequently internally within the uniformization optic redirect that same sub-portion to travel again in the second direction within the volume of the optical combiner before delivering the sub-portion to an outcoupler optic; and

the outcoupler optic to receive display light travelling in the second direction in the volume of the optical combiner and redirect the display light to exit the volume of the optical combiner.

18 . The optical combiner of claim 17 , wherein each of the incoupler optic, the expander optic, the uniformization optic, and the outcoupler optic comprise surface relief gratings.

19 . The optical combiner of claim 17 , wherein each of the incoupler optic, the expander optic, the uniformization optic, and the outcoupler optic comprise holograms.

20 . The optical combiner of claim 17 , wherein the uniformization optic comprises an optical grating, wherein for a region of the uniformization optic near to the incoupler optic, the uniformization optic has a first diffraction efficiency, for a region of the uniformization optic distal to the incoupler optic, the uniformization optic has a second diffraction efficiency, the first diffraction efficiency greater than the second diffraction efficiency.

21 . The optical combiner of claim 17 , wherein for a region of the uniformization optic near to the incoupler optic, the uniformization optic has a first width in the second direction, for a region of the uniformization optic distal to the incoupler optic, the uniformization optic has a second width in the second direction, the first width greater than the second width.

22 . The optical combiner of claim 17 , wherein the expander optic and the uniformization optic are immediately adjacent each other.

23 . The optical combiner of claim 17 , wherein the expander optic and the uniformization optic are a continuous grating area.

24 . The optical combiner of claim 17 , wherein the expander optic and the uniformization optic are spatially separated by a gap.