Claims
- 1. A method for displaying a color image comprising:
illuminating a multi-level optical phase element with light over spectrum having at least three colors to disperse said light into a plurality of diffraction orders; focusing the diffraction orders with a lens onto a phase shift element which phase shifts undiffracted light with respect to diffracted light; and imaging the plane of the multilevel optical phase element onto a display having a plurality of pixels such that selected pixels transmit different spectral regions.
- 2. A method in accordance with claim 1, concentrating different spectral regions of the light which illuminates said multi-level optical phase element at different subpixel regions of each pixel at the display; and further including
maximizing the area of chromaticity space for the different spectral regions spanned at the display.
- 3. A method in accordance with claim 2, wherein said multi-level optical phase element includes a plurality of multi-level optical phase element periods each having a plurality of optical phase sub-elements of different selected depths and said phase shift element has a zero-order phase element having a selected depth and said maximizing includes
selecting the depths of the optical phase sub-elements at each of the multi-level optical phase element periods of the multi-level optical phase element and the depth of said zero-order phase element of said phase shift element so that the selected values thereof produce a maximizing of the area of chromaticity space.
- 4. A method in accordance with claims 3, wherein the depths of said optical phase sub-elements and said zero-order phase element are selected to lie within a range thereof which will permit the practical manufacture of said multi-level optical phase element and said phase shift element.
- 5. A method in accordance with claims 1, wherein different spectral regions are red, green and blue regions of the spectrum and said imaging includes concentrating said red, green and blue spectral regions at different adjacent sub-pixel regions of each pixel at the display.
- 6. A method in accordance with claim 5, wherein said red, green and blue regions are concentrated at sub-pixel regions each of which occupies one-third of the corresponding overall pixel region.
- 7. A method in accordance with claim 3, wherein the depths of the optical phase sub-elements at each of the multi-level optical phase element periods of said multilevel optical phase element are selected to approximate a selected fraction of the wavelengths of different spectral regions of the light.
- 8. A system for displaying a color image comprising a source of light having a relatively broad spectrum;
a multi-level optical phase element illuminated by light from said source for dispersing said light into a plurality of diffraction orders; a phase shifter responsive to said dispersed light from said multilevel optical phase element for shifting undiffracted light thereof with respect to diffracted light thereof; a lens between the multi-level optical phase element and the phase shifter, the lens focussing light onto the phase shifter; and an image providing means for providing an image of the light from said source at an imaging plane having a plurality of pixels such that different spectral regions of the light from said source at the plane of said multi-level optical phase element are concentrated at said imaging plane so as to be imaged at different sub-pixel regions of each of said pixels at said imaging plane.
- 9. A system in accordance with claim 8 and further including
a first lens for focusing the dispersed light from the multilevel optical phase element on to said phase shifter; and wherein said image providing means includes a second lens responsive to said phase shifter for providing the image at said imaging plane.
- 10. A system in accordance with claims 8 or 9 wherein said multi-level optical phase element periods corresponding to a plurality of pixels at said imaging plane, each multi-level optical phase element period having a plurality of optical phase sub-elements with selected depths for different spectral regions of the received light and said phase shifter has a zero-order phase shift element of a selected depth, the depths of said optical phase sub-elements and said zero-order phase shift element being selected to maximize the area of chromaticity space spanned at the imaging plane.
- 11. A system in accordance with claim 10, wherein the depths of said optical phase sub-elements are selected to be selected fractions of the wavelengths of the spectral regions of the received light.
- 12. A system in accordance with claim 11, wherein optical phase sub-elements of the multi-level optical phase element corresponding to red, green and blue light regions of the spectrum have depths which are selected fractions of the wavelengths of said red, green and blue light regions.
- 13. A system in accordance with claim 8, wherein said source of light is a single source thereof.
- 14. A system in accordance with claim 13, wherein said single source is a tungsten halogen bulb.
- 15. A system in accordance with claim 8, wherein said source of light comprises three sources of red light, green light, and blue light, respectively.
- 16. A system in accordance with claim 15, wherein said three sources are light emiting diodes.
- 17. The system of claim 13 wherein the single source comprises a xenon arc lamp.
- 18. The system of claim 15 wherein the three sources comprise laser sources.
RELATED APPLICATION
[0001] This application is a continuation of application U.S. Ser. No. 08/330,339 filed on Oct. 27, 1994 the entire contents of which is incorporated by reference.
GOVERNMENT SUPPORT
[0002] The invention was supported, in whole or in part, by a grant F19628-85-C-0002 from Massachusetts Institute of Technology. The Government has certain rights in the invention.
Continuations (1)
|
Number |
Date |
Country |
Parent |
08330339 |
Oct 1994 |
US |
Child |
09038197 |
Mar 1998 |
US |