Liquid crystal panel and display device
US-12135478-B2 · Nov 5, 2024 · US
US9529326B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9529326-B2 |
| Application number | US-201113997383-A |
| Country | US |
| Kind code | B2 |
| Filing date | Dec 16, 2011 |
| Priority date | Dec 22, 2010 |
| Publication date | Dec 27, 2016 |
| Grant date | Dec 27, 2016 |
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The present invention relates to a light modulator device with a spatial light modulator, a structured polarizer means, a controllable polarization means and a light wave multiplexing means. The spatial light modulator comprises discretely addressable modulator cells. Two modulator cells each are combined to form a modulation element. The modulator cells modulate light waves which are capable of generating interference of a propagating light wave field with holographic information in a spatially structured way such that a specifiable spatial distribution of object light points of a three-dimensional scene is holographically reconstructed. The modulator cells of each modulation element are adjacently arranged regarding the direction of propagation of the light wave field. The light which is modulated by adjacently arranged modulator cells is given different polarization states by the structured polarizer means.
Opening claim text (preview).
The invention claimed is: 1. Light modulator device comprising a spatial light modulator, a structured polarizer, a controllable polarizer and a light wave multiplexer, where the spatial light modulator comprises discretely addressable modulator cells, where two modulator cells each are combined to form a modulation element, where the modulator cells modulate light waves which are capable of generating interference of a propagating light wave field with holographic information in a spatially structured way such that a specifiable spatial distribution of object light points of a three-dimensional scene is holographically reconstructed, where the modulator cells of each modulation element are adjacently arranged regarding the direction of propagation of the light wave field, where the light which is modulated by adjacently arranged modulator cells are given different polarization states by the structured polariser, where the light wave multiplexer is disposed and designed such that the different light wave portions—after having been modulated by the modulator cells and having different polarisation states—are combined on the exit side to form a modulated complex-valued light wave multiplex such that the modulated light wave multiplex leaves the light wave multiplexer substantially through a common point and substantially in the same direction of propagation, wherein in a first operational situation of the controllable polarizer light wave portions of two adjacent modulator cells are combined by the light wave multiplexer, whereas in a second operational situation of the controllable polarizer light wave portions of two other adjacent modulator cells are combined by the light wave multiplexer, where said two other adjacent modulator cells are offset by one modulator cell from the two adjacent modulator cells. 2. The light modulator device according to claim 1 , wherein the light wave field which illuminates the light modulator device is polarised and that the structured polarizer is designed such that it realises the optical function of a retardation plate or, a λ/2 plate or λ/4 plate, at least for a first portion of the light which is modulated by the adjacently arranged modulator cells. 3. The light modulator device according to claim 1 , wherein the structured polarizer gives the light which passes through a first modulator cell a specifiable first polarisation and the light which passes through a second modulator cell a specifiable second polarisation, where the specifiable first polarisation is linear and perpendicular to the specifiable second, linear polarisation, or where the specifiable first polarisation is circular and has an opposite direction of rotation as the specifiable second, circular polarisation. 4. The light modulator device according to claim 1 , wherein the light wave field which illuminates the light modulator device is linear or circular polarised. 5. The light modulator device according to claim 1 , wherein the controllable polarizer comprises an optical component based on liquid crystals which gives the light which interacts with the controllable polarizer a specifiable polarisation. 6. The light modulator device according to claim 1 , wherein the light wave multiplexer comprises a birefringent medium or a coplanar birefringent plate or a coplanar birefringent layer which is designed and arranged such that the light which passes through a first modulator cell is substantially not deflected while the light which passes through a second modulator cell leaves the birefringent medium with a lateral offset, so that the light portions are combined on its exit side to form a modulated light wave multiplex such that the modulated light wave multiplex leaves the birefringent medium substantially through a common point and substantially in the same direction of propagation. 7. The light modulator device according to claim 6 , wherein the birefringent medium is followed in the direction of light propagation by another birefringent medium, that the birefringent medium is designed and arranged such that the light which passes through a first modulator cell is substantially not deflected while the light which passes through a second modulator cell leaves the birefringent medium with a lateral offset, and that another birefringent medium is designed and arranged such that the light which passes through the second modulator cell is substantially not deflected while the light which passes through the first modulator cell leaves said another birefringent medium with a lateral offset, so that the light portions are combined on the exit side of said another birefringent medium to form a modulated light wave multiplex such that the modulated light wave multiplex leaves the birefringent medium substantially through a common point and substantially in the same direction of propagation. 8. The light modulator device according to claim 6 , wherein the birefringent medium is followed by another birefringent medium having a dispersion which is suitable for chromatic correction. 9. The light modulator device according to claim 7 , wherein the at least two birefringent media have substantially coplanar interfaces or that a retardation plate or a λ/2 plate is disposed between the two birefringent media. 10. The light modulator device according to claim 1 , wherein the light wave multiplexer comprises a first deflection layer and that the first deflection layer is followed in the direction of light propagation by a second deflection layer at a specifiable distance. 11. The light modulator device according to claim 10 , wherein the optical property of the first deflection layer is chosen such that the light which passes through the first modulator cell is substantially not deflected while the light which passes through the second modulator cell is deflected by a first specifiable angle and that the optical property of the second deflection layer is chosen such that the light which passes through the first modulator cell is substantially not deflected while the light which passes through the second modulator cell is deflected by a second specifiable angle, where the absolute value of the second specifiable angle could be substantially identical to the absolute value of the first specifiable angle. 12. The light modulator device according to claim 10 , wherein the optical property of the first deflection layer is chosen such that the light which passes through the first modulator cell is deflected by a first specifiable angle into a first direction while the light which passes through the second modulator cell is deflected by a second specifiable angle into a second direction, that the optical property of the second deflection layer is chosen such that the light which passes through the first modulator cell is deflected by the second angle while the light which passes through the second modulator cell is deflected by the first angle and that the absolute value of the first angle could be substantially identical to the absolute value of the second angle. 13. The light modulator device according to claim 1 , wherein the light wave multiplexer comprises a first birefringent prism array and a second birefringent prism array, that the first birefringent prism array is designed and arranged such that the light which passes through a first modulator cell is deflected into a first direction, that the light which passes through a second modulator cell is not deflected, that the first birefringent prism array is followed in the direction of light propagation by the second birefringent prism array at a specifiable distance, that the second birefringent prism array is designed and arranged such that the light
Arrangement of liquid crystal layers or cells in which the final condition of one light beam is achieved by the addition of the effects of two or more layers or cells · CPC title
Having optical element registered to each pixel · CPC title
Multiplexing processes, e.g. aperture, shift, or wavefront multiplexing · CPC title
Addressing the hologram to an active spatial light modulator · CPC title
Complex modulation · CPC title
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