Compact head-up display and waveguide therefor
A display system comprises a waveguide forming a pupil expander. The waveguide comprises a pair of opposing surfaces arranged to guide a diffracted light field therebetween by internal reflection. An input port of the waveguide is arranged to receive light from a display system. An output port of the waveguide is formed by a first transmissive-reflective element of a first surface of the pair of opposing surfaces. The first transmissive-reflective element is such that the diffracted light field is divided at each internal reflection and a plurality of replicas of the diffracted light field are transmitted out of the waveguide through the output port. The input port comprises a second transmissive-reflection element arranged to receive at least a portion of the light from the display system.
1 . A waveguide comprising:
a pair of opposing surfaces arranged to guide a light field therebetween by internal reflection;
an input port arranged to receive light from a display system, wherein the input port comprises a first transmissive-reflective element disposed on a first surface of the pair of opposing surfaces and configured to (i) receive, and partially transmit and partially reflect, at least a portion of the light from the display system and (ii) internally reflect within the waveguide at least some of the light field;
a reflective element disposed on the first surface of the pair of opposing surfaces, wherein the reflective element is adjacent to the first transmissive-reflective element and configured to internally reflect the light field within the waveguide, and wherein a transmissivity of the first surface from a start of the first transmissive-reflective element to an end of the reflective element is one of (i) continuous or (ii) continuously decreasing; and
an output port formed by a second transmissive-reflective element disposed on a second surface of the pair of opposing surfaces, wherein the second transmissive-reflective element is such that the light field is divided at each internal reflection and a plurality of replicas of the light field are transmitted out of the waveguide through the output port.
2 . The waveguide of claim 1 , wherein the first transmissive-reflective element is at least one of (i) configured such that at least some of the light field is incident thereon only once or (ii) configured such that all light rays of the light field are incident thereon only once.
3 . The waveguide of claim 1 , wherein the input port is formed on the first surface of the pair of opposing surfaces.
4 . The waveguide of claim 1 , wherein the first transmissive-reflective element has a transmissivity of between 0.1 to 0.5.
5 . The waveguide of claim 1 , wherein the reflective element is disposed on the first surface immediately adjacent to the input port.
6 . The waveguide of claim 1 , wherein a transmissivity of the reflective element is one of (i) less than 0.1, (ii) less than 0.07, or (iii) less than 0.05.
7 . The waveguide of claim 1 , wherein the first transmissive-reflective element is arranged to receive all the light from the display system.
8 . The waveguide of claim 1 , wherein the input port further comprises a transmissive element arranged to receive a portion of the light from the display system, and wherein one of (i) the transmissive element adjoins the first transmissive-reflective element and (ii) the first transmissive-reflective element adjoins the reflective element.
9 . The waveguide of claim 1 , wherein the first transmissive-reflective element comprises a partially transmissive and partially reflective surface coating.
10 . The waveguide of claim 1 , wherein the input port has a length in a direction of waveguiding and the first transmissive-reflective element extends over at least a part of the length of the input port.
11 . The waveguide of claim 1 , wherein one or both of (i) the display system comprises a spatial light modulator arranged to display a hologram and (ii) the light field is spatially modulated in accordance with the hologram.
12 . The waveguide of claim 1 , wherein the display system comprises a display device having a pixel area defining an exit pupil of the display system that is expanded by the waveguide.
13 . A system comprising a waveguide, wherein the waveguide comprises:
a pair of opposing surfaces arranged to guide a light field therebetween by internal reflection;
an input port arranged to receive light from a display system, wherein the input port comprises a first transmissive-reflective element disposed on a first surface of the pair of opposing surfaces and configured to (i) receive, and partially transmit and partially reflect, at least a portion of the light from the display system and (ii) internally reflect within the waveguide at least some of the light field;
a reflective element disposed on the first surface of the pair of opposing surfaces, wherein the reflective element is adjacent to the first transmissive-reflective element and configured to internally reflect the light field within the waveguide, and wherein a transmissivity of the first surface from a start of the first transmissive-reflective element to an end of the reflective element is one of (i) continuous or (ii) continuously decreasing; and
an output port formed by a second transmissive-reflective element disposed on a second surface of the pair of opposing surfaces, wherein the second transmissive-reflective element is such that the light field is divided at each internal reflection and a plurality of replicas of the light field are transmitted out of the waveguide through the output port; and
wherein the waveguide is a second one-dimensional pupil expander of a pair of waveguide pupil expanders arranged to expand a pupil of the display system in a first direction and a second, perpendicular direction, respectively.
14 . A system comprising:
a display system arranged to form a light field for viewing by a viewing system; and
a waveguide configured to receive the light field at an input port thereof, wherein the light field increases in size with propagation distance from the display system such that the viewing system can perceive a virtual image at a finite virtual image distance, and wherein the waveguide comprises:
a pair of opposing surfaces arranged to guide a light field therebetween by internal reflection;
an input port arranged to receive light from a display system, wherein the input port comprises a first transmissive-reflective element disposed on a first surface of the pair of opposing surfaces and configured to (i) receive, and partially transmit and partially reflect, at least a portion of the light from the display system and (ii) internally reflect within the waveguide at least some of the light field;
a reflective element disposed on the first surface of the pair of opposing surfaces, wherein the reflective element is adjacent to the first transmissive-reflective element and configured to internally reflect the light field within the waveguide, and wherein a transmissivity of the first surface from a start of the first transmissive-reflective element to an end of the reflective element is one of (i) continuous or (ii) continuously decreasing; and
an output port formed by a second transmissive-reflective element disposed on a second surface of the pair of opposing surfaces, wherein the second transmissive-reflective element is such that the light field is divided at each internal reflection and a plurality of replicas of the light field are transmitted out of the waveguide through the output port.
15 . The waveguide of claim 1 , wherein the light field comprises a diffracted light field.
16 . The waveguide of claim 1 , wherein the light field comprises an image formed by holographic reconstruction.
17 . The system of claim 13 , wherein the light field comprises a diffracted light field.
18 . The system of claim 13 , wherein the light field comprises an image formed by holographic reconstruction.
19 . The system of claim 14 , wherein the light field comprises a diffracted light field.
20 . The system of claim 14 , wherein the light field comprises an image formed by holographic reconstruction.