Claims
- 1. An infrared detector assembly comprising:
an infrared sensor configured to receive infrared radiation emitted from a scene; and at least one limiter element positioned between the sensor and the scene, such that the infrared sensor is configured to receive the radiation through said limiter element, wherein the limiter element is configured to limit the amount of infrared radiation that may pass to the sensor in response to its receipt of non-infrared radiation.
- 2. The infrared detector assembly of claim 1 wherein the infrared sensor comprises a focal plane array.
- 3. The infrared detector assembly of claim 1 further comprising a cold filter, wherein the infrared sensor is configured to receive the radiation only after the radiation has passed through the cold filter.
- 4. The infrared detector assembly of claim 1 further comprising:
a plurality of said limiter elements separated by barrier elements arranged between the limiter elements and configured to prevent spillover of attenuation effects from one limiter element to an adjacent limiter element.
- 5. The infrared detector of claim 1, wherein the limiter element comprises a photochromic material.
- 6. The infrared detector of claim 1, wherein said limiter element comprises a plurality of separated photochromic optics, wherein each photochromic optic is configured to selectively pass a respective portion of the radiation from a scene.
- 7. The infrared detector of claim 1 wherein said limiter element provides said limiting by changing transparency in response to solar radiation in the ultraviolet band, wherein said change in transparency affects the passage through said limiter element of solar radiation in the infrared band.
- 8. An optical limiter comprising:
an array of optics, wherein the array is configured to facilitate transmission of light corresponding to a scene, and wherein each optic is configured to receive a respective portion of the light corresponding to a respective portion of the scene, wherein respective portions of light can comprise low frequency radiation and high frequency radiation, and wherein each optic is configured to increase attenuation of the low frequency radiation when the intensity of the high frequency radiation increases.
- 9. The optical limiter of claim 8 wherein the low frequency radiation is infrared light and the high frequency radiation is ultraviolet light.
- 10. The optical limiter of claim 9 wherein the ultraviolet light is produced by the sun.
- 11. The optical limiter of claim 8 wherein each optic comprises photochromic material.
- 12. The optical limiter of claim 8 wherein said optics are separated from each other by at least one boundary.
- 13. A light detector assembly comprising:
a focal plane array comprising a plurality of pixels, wherein each pixel is included within one of a plurality of fields, and wherein each pixel includes at least one sensor configured to sense light having a first wavelength; an optical passage associated with each field, wherein the optical passage is configured to attenuate light having the first wavelength when the intensity of light having a second but different wavelength increases; and a macroscopic lens configured to converge light having at least one of the first and second wavelengths toward the optical passage.
- 14. The light detector assembly of claim 13 wherein each field contains only one pixel.
- 15. The light detector assembly of claim 13 wherein the optical passages are separated from each other by at least one boundary.
- 16. The light detector assembly of claim 13 wherein each optical passage comprises photochromic material.
- 17. A method of limiting light energy comprising:
receiving portions of light corresponding to respective portions of a scene within each of a plurality of optics, wherein a first portion of light comprises light having a first wavelength and light having a second but different wavelength; for each optic receiving said first portion of light, attenuating the light transmitted through the optic having the first wavelength when the intensity of light received having the second wavelength increases; and sensing the attenuated light having the first wavelength after it has passed through the optics.
- 18. The method of limiting light energy of claim 17 wherein the operation of attenuating light comprises a change in optic transparency.
- 19. The method of limiting light energy of claim 17 wherein said first portion of light is received from the sun.
- 20. The method of limiting light energy of claim 17 wherein said optic is provided having photochromic properties.
- 21. The method of limiting light energy of claim 17, wherein the light having the first wavelength comprises infrared light and the light having the second wavelength comprises ultraviolet light.
- 22. The method of limiting light energy of claim 17, further comprising:
converging the portions of light using a single lens and without re-imaging components.
- 23. The method of limiting light energy of claim 17, further comprising:
filtering the attenuated light using a cold filter.
- 24. The method of limiting light energy of claim 17, wherein the sensing operation is conducted by a cryogenically cooled sensor.
- 25. A sensor comprising:
pixels configured to sense radiation within a predetermined wavelength range from a scene; a plurality of filter elements associated with the pixels, wherein each filter element is disposed between the scene and at least one pixel, wherein each filter element is configured to attenuate the passage to the at least one pixel of radiation within the predetermined wavelength range in response to radiation outside of the predetermined wavelength range; and barrier elements arranged between the filter elements and configured to prevent spillover of attenuation effects from one filter element to an adjacent filter element.
- 26. The sensor of claim 25 wherein the predetermined wavelength range comprises infrared radiation.
- 27. The sensor of claim 25 wherein at least a portion of the sensor is cryogenically cooled.
- 28. The sensor of claim 25 wherein the scene is re-imaged before being received by said filter elements.
- 29. The sensor of claim 25 further comprising a cold filter positioned between the pixels and the scene.
- 30. The sensor of claim 25, wherein the filter elements each comprise at least one of a photochromic device, a non-linear device, a thermochromic device, and an electrochromic device.
- 31. An infrared detector assembly comprising:
a focal plane array comprising a plurality of pixels configured to detect infrared radiation from a scene, wherein each pixel is included within one of a plurality of fields; and a limiter disposed between the scene and the sensor, the limiter comprising a plurality of photochromic elements separated from each other by at least one barrier, wherein each photochromic element is associated with one of said fields, is configured to lose optical transparency in response to ultraviolet radiation from the scene, and is configured to thereby attenuate infrared radiation from the scene to said field.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application Serial No. 60/425,004 filed on Nov. 8, 2002, the entire disclosure of which is hereby incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60425004 |
Nov 2002 |
US |