Claims
- 1. A light filtering assembly for filtering an input beam of light having a plurality of desired wavelength components and a plurality of unwanted wavelength components, the assembly comprising:
an input section disposed in the path of the input beam, said input section dividing the input beam into a plurality of polarized beamlets that travel along a corresponding plurality of spatially separated beam paths, said plurality of polarized beamlets comprising (a) a plurality of desired beamlets corresponding to the desired wavelength components and (b) a plurality of unwanted beamlets corresponding to the unwanted wavelength components; a filter section disposed in the beam paths, said filter section attenuating the unwanted beamlets, said filter section passing the desired beamlets; and an output section disposed so as to receive the desired beamlets from the filter section, said output section spatially combining the desired beamlets so as to provide a filtered output beam comprising the desired wavelength components of the input beam.
- 2. The assembly of claim 1, wherein the input section comprises a polarization converter disposed so as to receive the input beam, said polarization converter converting the input beam into linearly polarized light.
- 3. The assembly of claim 2, wherein the polarization converter converts the input beam into at least one s-polarized beam.
- 4. The assembly of claim 3, wherein the at least one s-polarized beam comprises a first and second s-polarized beam that travel in substantially parallel directions.
- 5. The assembly of claim 4, wherein the polarization converter comprises a polarizing beamsplitter and a polarization rotator plate, said polarizing beamsplitter providing the first s-polarized beam and a p-polarized beam, said plate disposed so as to receive the p-polarized beam, said plate rotating the axis of polarization of the p-polarized beam so as to provide the second s-polarized beam.
- 6. The assembly of claim 4, wherein the input section further comprises a light dispersing element for dispersing the first and second s-polarized beams into the plurality of polarized beamlets, said light dispersing element comprising a diffraction grating.
- 7. The assembly of claim 6, wherein the light dispersing element provides light dispersing characteristics that are substantially unchanged in response to a change in temperatures.
- 8. The assembly of claim 6, wherein the light dispersing element provides increased throughput efficiency.
- 9. The assembly of claim 6, wherein said polarization converter provides the first and second s-polarized beams separated within a first plane and wherein said light dispersing elements disperses the plurality of polarized beamlets within a second plane.
- 10. The assembly of claim 6, wherein the input section further comprises a focusing element that receives the plurality of polarized beamlets from the light dispersing element, said focusing element focusing the plurality of polarized beamlets in a focal plane.
- 11. The assembly of claim 10, wherein said focusing by said focusing element provides a spatially elongated intensity pattern that is spectrally separated.
- 12. The assembly of claim 11, wherein the focusing element directs matching pairs of beamlets having matching wavelengths toward each other so that the matching pairs of beamlets intersect each other in the focal plane of the focusing element.
- 13. The assembly of claim 12, wherein the focusing element comprises a telecentric converging lens.
- 14. The assembly of claim 13, wherein the filter section comprises an opaque screen having a plurality of light transmitting apertures formed therein, said opaque screen disposed in the focal plane of the focusing element so that that the desired beamlets transmit through the apertures and so that the unwanted beamlets do not transmit through the apertures.
- 15. The assembly of claim 1, wherein the output section comprises a collimating element disposed so as to receive the desired beamlets from the filter section, said collimating element collimating the desired beamlets.
- 16. The assembly of claim 15, wherein the collimating element comprises a telecentric converging lens.
- 17. The assembly of claim 16, wherein the output section further comprises a first beam combining element disposed so as to receive the desired beamlets from the collimating element, said first beam combining element comprising a diffraction grating.
- 18. The assembly of claim 17, wherein the first beam combining element combines the plurality of desired beamlets into at least one combined s-polarized beam.
- 19. The assembly of claim 18, wherein the at least one combined s-polarized beam comprises a first and second combined s-polarized beam.
- 20. The assembly of claim 18, wherein the output section further comprises a depolarization converter disposed so as to receive the at least one combined s-polarized beam from the first beam combining element, said depolarization converter converting the at least one combined s-polarized beam into the unpolarized output beam.
- 21. The assembly of claim 20, wherein the at least one combined s-polarized beam provided by the first beam combining element comprises a first and second combined s-polarized beam, wherein the depolarization converter combines the first and second s-polarized beams to form the unpolarized output beam.
- 22. The assembly of claim 21, wherein the depolarization converter comprises a polarizing beamsplitter and a ½ wave plate, said plate disposed in the path of the second combined s-polarized beam so as to convert the second combined s-polarized beam into a combined p-polarized beam, said polarizing beamsplitter comprising an input face and an output face having first and second output face portions, said polarizing beamsplitter disposed so as to respectively receive the first combined s-polarized beam and the combined p-polarized beam at the first and second output face portions of the output face, said polarizing beamsplitter outputting the unpolarized output beam from the input face.
- 23. The assembly of claim 1, wherein the input section is substantially identical to the output section.
- 24. A method of filtering an input beam of light having a plurality of desired wavelength components and a plurality of unwanted wavelength components so as to provide a filtered output beam of light comprising the desired wavelength components, the method comprising:
dividing the input beam into a plurality of polarized beamlets that travel along spatially separated beam paths, said beamlets comprising (a) a plurality of desired beamlets corresponding to the desired wavelength components and (b) a plurality of unwanted beamlets corresponding to the unwanted wavelength components; separating the desired beamlets from the unwanted beamlets; and combining the desired beamlets so as to provide the filtered output beam.
- 25. The method of claim 24, wherein dividing the input beam comprises converting the input beam into at least one linearly polarized beam.
- 26. The method of claim 25, wherein converting the input beam into the at least one linearly polarized beam comprises converting the input beam into a first and second s-polarized beam.
- 27. The method of claim 26, wherein dividing the input beam further comprises diffracting the input beam.
- 28. The method of claim 27 wherein diffracting the input beam comprises directing the at least one linearly polarized beam through a light dispersing element having a diffraction grating so that the at least one linearly polarized beam is diffracted by the diffraction grating.
- 29. The method of claim 24, wherein separating the desired beamlets from the unwanted beamlets comprises attenuating the unwanted beamlets.
- 30. The method of claim 29, wherein attenuating the unwanted beamlets comprises blocking the paths of the unwanted beamlets.
- 31. A light manipulating assembly for manipulating an input beam of light having a plurality of wavelength components so as to provide an output beam of light, said assembly comprising:
an input section disposed in the path of the input beam, said input section dividing the input beam into a first plurality of polarized beamlets that travel along a corresponding plurality of spatially separated beamlet paths; a beamlet manipulator disposed in the beamlet paths so as to manipulate at least one of the first plurality of polarized beamlets in a spatially dependent manner, said beamlet manipulator providing a second plurality of polarized beamlets; and an output section disposed so as to receive the second plurality of polarized beamlets exiting the beamlet manipulator, said output section constructing the output beam from the second plurality of polarized beamlets.
- 32. The assembly of claim 31, wherein the first plurality of polarized beamlets comprises (a) a plurality of desired beamlets corresponding to a plurality of desired wavelength components of the input beam and (b) a plurality of unwanted beamlets corresponding to a plurality of unwanted wavelength components of the input beam.
- 33. The assembly of claim 32, wherein the second plurality of polarized beamlets comprises the plurality of desired beamlets.
- 34. The assembly of claim 33, wherein the beamlet manipulator comprises a filter section, said filter section attenuating the unwanted beamlets, said filter section passing the desired beamlets.
- 35. The assembly of claim 34, wherein the filter section comprises an opaque material having a plurality of apertures, said filter section disposed so that the plurality of desired beamlets are aligned with the plurality of apertures and the plurality of unwanted beamlets are not aligned with the plurality of apertures.
- 36. The assembly of claim 34, wherein the output section spatially combines the desired beamlets exiting the filter section so as to construct the output beam which comprises the desired wavelength components of the input beam.
- 37. A light filtering system for filtering a first and second input beam of light having respective first and second pluralities of desired wavelength components and respective first and second pluralities of unwanted wavelength components, the system comprising:
an input section disposed in the paths of the first and second input beams, said input section dividing the first and second input beams into respective first and second pluralities of polarized beamlets that travel along respective first and second pluralities of spatially separated beam paths, said first and second pluralities of polarized beamlets comprising (a) respective first and second pluralities of desired beamlets corresponding to the desired wavelength components of the first and second input beams and (b) respective first and second pluralities of unwanted beamlets corresponding to the unwanted wavelength components of the first and second input beams; a filter section disposed in the first and second beam paths, said filter section attenuating the first and second pluralities of unwanted beamlets, said filter section passing the first and second pluralities of desired beamlets; and an output section disposed so as to receive the first and second pluralities of desired beamlets from the filter section, said output section spatially combining the first plurality of desired beamlets so as to provide a first filtered output beam that comprises the desired wavelength components of the first input beam, said output section spatially combining the second plurality of desired beamlets so as to provide a second filtered output beam that comprises the desired wavelength components of the second input beam.
- 38. The system of claim 37, wherein the input section comprises a polarizing beamsplitter that splits the first and second input beams into respective first and second p-polarized beams and respective first and second s-polarized beams.
- 39. The system of claim 38, wherein the first p-polarized beam and the first s-polarized beam are substantially aligned with the first input beam, and wherein the second p-polarized beam and the second s-polarized beam are substantially aligned with the second input beam.
- 40. The system of claim 39, wherein the polarizing beamsplitter comprises a single planar sheet of transparent material having opposing planar parallel surfaces.
- 41. The system of claim 37, wherein the input section comprises a light dispersing element for generating the first and second pluralities of polarized beamlets, said light dispersing element comprising a single transparent substrate element.
- 42. The system of claim 41, wherein the light dispersing element further comprises a single diffraction grating having first and second diffractive faces, said first and second diffractive faces respectively providing the first and second pluralities of polarized beamlets.
- 43. The system of claim 42, wherein the light dispersing element provides light dispersing characteristics that are substantially unchanged in response to a change in temperatures.
- 44. The system of claim 42, wherein the light dispersing element provides increased throughput efficiency.
- 45. The system of claim 37, wherein the input section comprises a single focusing element that receives the first and second pluralities of polarized beamlets and focuses the first and second pluralities of polarized beamlets in a focal plane.
- 46. The system of claim 45, wherein the focusing element provides first and second spatially elongated intensity patterns that are each spectrally separated and disposed in the focal plane of the focusing element.
- 47. The system of claim 46, wherein the first and second spatially elongated intensity patterns are parallel to each other and offset from each other.
- 48. The system of claim 47, wherein the focusing element comprises a single converging lens.
- 49. The system of claim 47, wherein the filter section comprises an opaque screen having a first and second plurality of light transmitting apertures formed therein, said opaque screen disposed in the focal plane of the focusing element so that that the first and second pluralities of desired beamlets are respectively aligned with the first and second pluralities of apertures and so that the first and second pluralities of unwanted beamlets are not aligned with the first and second pluralities of apertures.
- 50. The system of claim 37, wherein the output section comprises a collimating element disposed so as to receive the first and second pluralities of desired beamlets from the filter section, said collimating element collimating the first and second pluralities of desired beamlets.
- 51. The system of claim 50, wherein the collimating element comprises a single converging lens.
- 52. The system of claim 50, wherein the output section further comprises a beam combining element disposed so as to receive the first and second pluralities of desired beamlets from the collimating element, said beam combining element comprising a single substrate element and a single diffraction grating mounted to a surface of the single substrate element.
- 53. The system of claim 37, wherein the output section comprises a polarizing beamsplitter for constructing the first and second output beams, said polarizing beamsplitter comprising a single planar sheet of transparent material having planar parallel opposing surfaces.
- 54. The system of claim 37, wherein the input section is substantially identical to the output section.
- 55. The system of claim 37, wherein the first plurality of polarized beamlets are s-polarized and the second plurality of polarized beamlets are p-polarized.
- 56. The system of claim 55, wherein the input section comprises a beamlet contracting element disposed in the paths of the first and second pluralities of polarized beamlets, said beamlet contracting element reducing the distance between the paths of the first plurality of s-polarized beamlets and the paths of the second plurality of p-polarized beamlets.
- 57. The system of claim 56, wherein the beamlet contracting element is a polarizing beamsplitter configured in a reverse manner.
- 58. The system of claim 56, wherein the output section comprises a beamlet expanding element disposed in the paths of the first and second pluralities of desired beamlets, said beamlet expanding element increasing the distance between the paths of the first plurality of desired beamlets and the paths of the second plurality of desired beamlets.
- 59. The system of claim 37, wherein the input section comprises an optical compensator disposed in the paths of the first plurality of polarized beamlets and wherein the input section further comprises a diffractive element, said optical compensator modifying the paths of the first plurality of polarized beamlets so as to reduce the differences between the geometry of the first plurality of polarized beamlets and the geometry of the second plurality of polarized beamlets at the diffractive element.
- 60. The system of claim 37, wherein the output section comprises an optical compensator disposed in the paths of the first plurality of desired beamlets and wherein the output section further comprises a diffractive element, said optical compensator modifying the paths of the first plurality of desired beamlets so as to reduce the differences between the geometry of the first plurality of desired beamlets and the geometry of the second plurality of desired beamlets at the diffractive element.
Parent Case Info
[0001] This is a continuing application claiming the priority of U.S. application Ser. No. 09/538,411 filed on Mar. 28, 2000—entitled “Dual Grating Filtering System”, which is hereby incorporated by reference in its entirety.
Continuations (1)
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Number |
Date |
Country |
| Parent |
09538411 |
Mar 2000 |
US |
| Child |
10145455 |
May 2002 |
US |