Augmented reality display device
An augmented reality display device ( 100 ), comprising: a light engine ( 102 ) for emitting image light; and at least one layer of optical waveguide lens ( 101 ) comprising an in-coupling grating region ( 1012 ), an optical waveguide substrate ( 1011 ) and a turning and out-coupling grating region ( 1013 ), wherein the in-coupling grating region ( 1012 ) is disposed on a first optical surface of the optical waveguide substrate ( 1011 ); the optical waveguide substrate ( 1011 ) is configured to transmit the image light through total reflection; the turning and out-coupling grating region ( 1013 ) is disposed on the first optical surface of the optical waveguide substrate ( 1011 ) for receiving totally reflected light and coupling it out; and a sum of the in-coupling grating vector and the turning and out-coupling grating vectors is not zero, wherein the in-coupling angles of the light engine ( 102 ) and the respective layers of optical waveguide lenses ( 101 ) are identical. As a result, the light engine ( 102 ) and the optical waveguide lenses ( 101 ), even in the case of non-perpendicular in-coupling, can ensure that the central field of view of the light engine ( 102 ) coincides with the central field of view of human eyes, greatly improving the degree of freedom of the structural design of the light engine ( 102 ) and the optical waveguide lenses ( 101 ), so that the structure of the augmented reality display device ( 100 ) is diversified, and the display device is manufactured as having a smaller size.
1 . An augmented reality display device, comprising:
a light engine for emitting image light;
at least one layer of optical waveguide lens for coupling in, turning and coupling out the image light emitted by the light engine, the at least one layer of optical waveguide lens comprising an in-coupling grating region, an optical waveguide substrate, and a turning and out-coupling grating region,
wherein
the in-coupling grating region is disposed on a first optical surface of the optical waveguide substrate, and receives the transmitted image light emitted by the light engine;
the optical waveguide substrate is configured to transmit the image light through total reflection;
the turning and out-coupling grating region is disposed on the first optical surface of the optical waveguide substrate, receives the totally reflected light transmitted by the optical waveguide substrate and couples it out; and
a sum of the in-coupling grating vector and the turning and out-coupling grating vectors is not zero,
wherein an angle of image light emitted from the light engine, relative to a surface normal line of the at least one layer of optical waveguide lens, is identical to an in-coupling angle at which the image light is coupled into the at least one layer of optical waveguide lens, so that the image light emitted from the light engine is efficiently coupled into the at least one layer of optical waveguide lens;
wherein the image light transmitted by a light source of the light engine comprises visible laser light, and the dispersion of the optical waveguide lens is limited by a narrow linewidth characteristic of the light source;
wherein the turning and out-coupling grating region is configured as a two-dimensional surface relief grating, wherein periods of the turning and out-coupling grating are Λ 3 along two directions, and a linewidth δλ of the visible laser light satisfies the following formula:
δλ
=
λ
sin
ε
tan
θ
wherein ϵ is an angular resolution of a human eye, θ is an included angle between an in-coupling direction of image light emitted from the light engine and the surface normal line of the at least one layer of optical waveguide lens, and λ is a wavelength of the transmitted image light.
2 . The display device according to claim 1 , wherein the at least one layer of optical waveguide lens corresponds to a respective one color of image light.
3 . The display device according to claim 1 , wherein a grating period of the turning and out-coupling grating region needs to satisfy the following formula:
k
0
sin
θ
+
k
0
sin
γ
+
2
π
Λ
1
-
2
π
Λ
2
=
0
wherein
k
0
=
2
π
λ
,
θ is the included angle between the in-coupling direction of image light emitted from the light engine and the surface normal line of the at least one layer of optical waveguide lens, λ is the wavelength of the transmitted image light, and γ is an included angle between a surface of the at least one layer of optical waveguide lens and a vertical direction, wherein the vertical direction is perpendicular to a direction of sight, Λ 1 is an in-coupling grating period, and Λ 2 is a turning and out-coupling grating period.
4 . The display device according to claim 3 , wherein the included angle θ between the in-coupling direction of image light emitted from the light engine and the surface normal line of the at least one layer of optical waveguide lens ranges from 0° to 15°.
5 . The display device according to claim 4 , wherein the included angle γ between the surface of the at least one layer of optical waveguide lens and the vertical direction and the included angle θ between the in-coupling direction of image light emitted from the light engine and the surface normal line of the at least one layer of optical waveguide lens satisfy the following formula:
θ
+
γ
≤
20
°
.
6 . The display device according to claim 1 , wherein the linewidth δλ of the visible laser light, an in-coupling grating period, and a turning and out-coupling grating period satisfy the following formula:
δλ
=
Λ
1
Λ
2
sin
ε
cos
θ
Λ
1
-
Λ
2
,
wherein ϵ is an angular resolution of a human eye, θ is the included angle between the in-coupling direction of image light emitted from the light engine and the surface normal line of the at least one layer of optical waveguide lens, Λ 1 is an in-coupling grating period, Λ 2 is a turning and out-coupling grating period, and δλ is the linewidth of the visible laser light.
7 . The display device according to claim 1 , wherein the optical waveguide substrate has a thickness of 0.3 mm to 2.5 mm and a refractive index of 1.4 to 2.2.
8 . The display device according to claim 7 , wherein the optical waveguide substrate is transparent, has a fixed thickness, has two opposite optical planes, and is made of a material comprising glass or quartz.