Multibeam diffraction grating-based color backlighting
US-2016033705-A1 · Feb 4, 2016 · US
US2016370594A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016370594-A1 |
| Application number | US-201615253809-A |
| Country | US |
| Kind code | A1 |
| Filing date | Aug 31, 2016 |
| Priority date | May 31, 2012 |
| Publication date | Dec 22, 2016 |
| Grant date | — |
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A directional backlight is disclosed. The directional backlight has a plurality of light sources to generate a plurality of input planar lightbeams. The plurality of input planar lightbeams illuminates a directional backplane that has a plurality of directional pixels to scatter the plurality of input planar lightbeams into a plurality of directional lightbeams. Each directional lightbeam has a direction and angular spread controlled by characteristics of a directional pixel in the plurality of directional pixels. The directional backlight can be used to generate a 3D image by specifying the characteristics of the directional pixels in the directional backplane.
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1 - 13 . (canceled) 14 : A method for generating a 3D image with a directional backlight, comprising: specifying a plurality of characteristics for a plurality of directional pixels, each directional pixel composed of a patterned grating having substantially parallel and slanted grooves; fabricating a directional backplane with the plurality of directional pixels arranged thereon; illuminating the directional backplane with light from a plurality of light sources; and generating the 3D image with directional lightbeams scattered by the plurality of directional pixels in the directional backplane. 15 : The method of claim 14 , wherein each directional lightbeam is controlled by the characteristics of a directional pixel. 16 : The method of claim 14 , wherein the characteristics of a directional pixel comprise a grating length, a grating width, a grating orientation, a grating pitch, and a duty cycle. 17 : The method of claim 16 , wherein the grating pitch and the grating orientation of a directional pixel control a direction of a directional lightbeam scattered by the directional pixel. 18 : The method of claim 16 , wherein the grating length and the grating width of a directional pixel control an angular spread of a directional lightbeam scattered by the directional pixel. 19 - 21 . (canceled) 22 : A method of scattering input lightbeams as directional lightbeams with a directional backlight comprising: generating a plurality of planar lightbeams from a plurality of light sources; inputting the plurality of planar lightbeams into a directional backplane of the directional backlight, the directional backplane having a plurality of directional pixels, each directional pixel having characteristics to control light scattering; and scattering the plurality of input planar lightbeams into a plurality of directional lightbeams out of the directional backplane using the plurality of directional pixels, wherein scattering the plurality of input planar lightbeams comprises controlling a direction and an angular spread of each respective directional lightbeam using the characteristics of a respective directional pixel in the plurality of directional pixels, wherein an input planar lightbeam from a single one of the light sources is scattered into at least two different directional lightbeams of the directional lightbeam plurality, the at least two different directional lightbeams having different angular directions from one another. 23 : The method of scattering input lightbeams as directional lightbeams of claim 22 , wherein the light sources of the plurality of light sources are color light sources, and wherein the input planar lightbeam from a single one of the light sources is a planar lightbeam of a single color. 24 : The method of scattering input lightbeams as directional lightbeams of claim 22 , wherein the at least two different directional lightbeams having different angular directions from one another correspond to different views of a three-dimensional image. 25 : The method of scattering input lightbeams as directional lightbeams of claim 22 , wherein scattering the plurality of input planar lightbeams further comprises using diffractive scattering, each directional pixel comprising a diffraction grating arranged at a surface of the directional backplane, the light scattering control characteristics of the directional pixel comprising pattern characteristics of the diffraction grating. 26 : The method of scattering input lightbeams as directional lightbeams of claim 25 , wherein a pattern of the diffraction grating comprises a plurality of substantially parallel and slanted grooves. 27 : The method of scattering input lightbeams as directional lightbeams of claim 25 , wherein the pattern characteristics of the diffraction grating comprise a grating pitch and a grating orientation configured to control the direction of the directional lightbeam scattered by the directional pixel. 28 : The method of scattering input lightbeams as directional lightbeams of claim 25 , wherein the pattern characteristics of the diffraction grating comprise a grating length and a grating width configured to control the angular spread of the directional lightbeam scattered by the directional pixel. 29 : The method of scattering input lightbeams as directional lightbeams of claim 22 , further comprising collimating and focusing the input planar lightbeams into the directional backplane using a lens component disposed between the plurality of light sources and the directional backplane. 30 : The method of scattering input lightbeams as directional lightbeams of claim 22 , wherein the plurality of directional lightbeams from the directional backplane represent multiple image views that combine to form a three-dimensional image, the different angular directions of the at least two different directional lightbeams corresponding to different ones of the multiple image views. 31 : A method of generating a three-dimensional (3D) image with a directional backlight comprising: illuminating a directional backplane having a plurality of directional pixels arranged thereon with light from a plurality of color light sources, the light being a plurality of input planar lightbeams, the directional pixels comprising patterned gratings having substantially parallel and slanted grooves; scattering the plurality of input planar lightbeams out of the directional backplane as a plurality of directional lightbeams using the plurality of directional pixels, each directional lightbeam having a direction and an angular spread controlled by characteristics of the patterned gratings; and generating the 3D image with the plurality of directional lightbeams, wherein the directional pixels are configured to scatter light of a single color in an input planar lightbeam from a single one of the color light sources of the plurality of color light sources into at least two different directional lightbeams of the directional lightbeam plurality, the at least two different directional lightbeams having different angular directions from one another corresponding to different views of the 3D image. 32 : The method of generating a three-dimensional (3D) image with a directional backlight of claim 31 , wherein the characteristics of the patterned gratings comprise a grating pitch and a grating orientation configured to control the directions of the directional lightbeams scattered by the directional pixels. 33 : The method of generating a three-dimensional (3D) image with a directional backlight of claim 31 , wherein the characteristics of the patterned gratings comprise a grating length and a grating width configured to control the angular spread of the directional lightbeams scattered by the directional pixels. 34 : The method of generating a three-dimensional (3D) image with a directional backlight of claim 31 , further comprising generating the plurality of planar lightbeams of light from the plurality of color light sources, and wherein illuminating a directional backplane comprises collimating and focusing the input planar lightbeams using a lens component disposed between the plurality of color light sources and the directional backplane. 35 : The method of generating a three-dimensional (3D) image with a directional backlight of claim 31 , wherein the directional backplane comprises a triangular directional backplane. 36 : The method of generating a three-dimensional (3D) image with a directional backligh
having a diffractive optical element [DOE] contributing to image formation, e.g. whereby modulation transfer function MTF or optical aberrations are relevant · CPC title
Arrangements of plural sources, e.g. multi-colour light sources · CPC title
provided by one optical element, or plurality thereof, placed on the light output side of the light guide · CPC title
Lens or lenticular sheet or layer · CPC title
Physics · mapped topic
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