Claims
- 1. An optical system comprising:
a beam polarization combiner for receiving a first set of input beams and a second set of input beams, each beam in the first set of beams having a different wavelength and each beam in the second set of beams having a different wavelength and corresponding to a beam in the first set of beams; and a reflective spatial light modulator having a plurality of individually activated modulating elements each corresponding to a respective one of the different wavelengths of the input beams, wherein each input beam is directed at a modulating element of corresponding wavelength with input beams of the first set impinging upon the corresponding modulating element from a first incoming path and input beams of the second set impinging upon the corresponding modulating element from a second incoming path, each modulating element selectively changes the polarization of, and reflects, the input beams such that a first outgoing path for each reflected beam of the first set is superimposed on the second incoming path and a second outgoing path for each reflected beam of the second set is superimposed on the first incoming path, wherein said polarization beam combiner receives the reflected first and second sets of beams and directs the beams in different directions based upon the polarization of the beams as selectively imparted by said reflective spatial light modulator.
- 2. The optical system of claim 1, wherein said polarization beam combiner further receives a third set of input beams and a fourth set of input beams, the input beams of the third and fourth sets being polarized opposite that of the input beams of the first and second sets, each beam in the third set of beams having a different wavelength and each beam in the fourth set of beams having a different wavelength and corresponding to a beam in the third set of beams, and wherein each input beam of the third and fourth sets is directed at a modulating element of corresponding wavelength with input beams of the third set impinging upon the corresponding modulating element from the first incoming path and input beams of the fourth set impinging upon the corresponding modulating element from the second incoming path, each modulating element selectively changes the polarization of, and reflects, the input beams such that each reflected beam of the third set is output along the first outgoing path, which is superimposed on the second incoming path, and such that each reflected beam of the fourth set is output along the second outgoing path, which is superimposed on the first incoming path, wherein said polarization beam combiner receives the reflected third and fourth sets of beams and directs the beams in different directions based upon the polarization of the beams as selectively imparted by said reflective spatial light modulator.
- 3. The optical system of claim 2 and further comprising a lens disposed between said polarization beam combiner and said reflective spatial light modulator for focusing beams onto said reflective spatial modulator and for collimating reflected beams from said reflective spatial light modulator.
- 4. The optical system of claim 3 and further comprising a retarder disposed between said polarization beam combiner and said reflective spatial light modulator.
- 5. The optical system of claim 1 and further comprising a lens disposed between said polarization beam combiner and said reflective spatial light modulator, for focusing beams onto said reflective spatial modulator and for collimating reflected beams from said reflective spatial light modulator.
- 6. The optical system of claim 1, wherein said polarization beam combiner comprises one or more optical elements selected from a group consisting of a polarizing beam combining prism, a birefringent plate, polarizing prisms, and polarization beamsplitting slabs.
- 7. The optical system of claim 1, wherein said reflective spatial light modulator is selected from a group consisting of a reflective liquid crystal device, a pixellated birefringent crystal array, a plurality of MEMs devices, and an array of variable filters.
- 8. A dynamic spectral equalizer comprising:
a polarization beam separator for separating an input beam into first and second orthogonally polarized beamlets that are spatially separated from one another; a dispersive element for dispersing said beamlets into a plurality of beamlet pairs each beamlet pair corresponding to different wavelengths; and a reflective spatial light modulator having a plurality of individually activated modulating elements each corresponding to a respective one of the beamlet pairs, wherein each beamlet pair is directed at a corresponding modulating element with the two beamlets forming the pair respectively impinging upon the corresponding modulating element from two separate incoming paths, each modulating element selectively attenuates and reflects the beamlets such that an outgoing path for each polarized beamlet is superimposed on the incoming path for the other polarized beamlet of the beamlet pair.
- 9. The dynamic spectral equalizer of claim 8 and further comprising a lens for focusing the plurality of beamlet pairs onto said reflective spatial light modulator.
- 10. The dynamic spectral equalizer of claim 9, wherein, following selective reflection from a corresponding modulating element, the reflected beamlet pairs pass back through said lens where the reflected beamlets are collimated and directed back to said dispersion element, where the plurality of reflected beamlet pairs are recombined into two reflected beamlets based upon their original polarization upon separation by said polarization beam separator.
- 11. The dynamic spectral equalizer of claim 10, wherein the two reflected beamlets output from said dispersive element impinge upon said polarization beam separator, which recombines the two reflected beamlets to form an output beam.
- 12. The dynamic spectral equalizer of claim 11 and further comprising a common fiber having a first end from which the input beam is projected onto said polarization beam separator and into which the output beam is coupled.
- 13. The dynamic spectral equalizer of claim 12 and further comprising an input fiber, an output fiber, and a circulator coupled to said input, output and common fibers, said circulator receives the input beam from said input fiber and directs the input beam to said common fiber, said circulator further receiving the output beam from said common fiber and directs the output beam to said output fiber.
- 14. The dynamic spectral equalizer of claim 8 and further comprising a polarizer disposed in front of said reflective spatial light modulator.
- 15. The dynamic spectral equalizer of claim 8 and further comprising a polarizer disposed between said polarization beam separator and said dispersing element in the beam path of one of the two beamlets.
- 16. The dynamic spectral equalizer of claim 15, wherein said beamlets of each beamlet pair impinge upon the corresponding modulating element in equal and opposite angles with respect to a normal to the incident surface of the modulating element.
- 17. The dynamic spectral equalizer of claim 8 and further comprising a retarder disposed between said reflective spatial light modulator and said polarization beam combiner.
- 18. The dynamic spectral equalizer of claim 8, wherein said reflective spatial light modulator is selected from a group consisting of a reflective liquid crystal device, a pixellated birefringent crystal array, a plurality of MEM devices, and an array of variable filters.
- 19. The dynamic spectral equalizer of claim 8, wherein said reflective spatial light modulator is a reflective liquid crystal device.
- 20. The dynamic spectral equalizer of claim 8, wherein said polarization beam separator comprises one or more elements selected from the group consisting of a pair of beam polarizing beamsplitters, a birefringent plate, a polarizing prism, and a polarization beam splitting slab.
- 21. The dynamic spectral equalizer of claim 8, wherein said dispersive element is selected from a group consisting of a prism, a grating, and a grism.
- 22. A dynamic spectral equalizer comprising:
a first polarization beam separator for separating a first input beam into first and second orthogonally polarized beamlets that are spatially separated from one another; a first polarization changer for changing the polarization of the first beamlet such that said first and second beamlets both have a first polarization; a first dispersive element for separating each of the first and second beamlets into respective first and second sets of component beamlets corresponding to different wavelengths, each component beamlet in the first set having a corresponding component beamlet in the second set at the same wavelength; a second polarization beam separator for separating a second input beam into third and fourth orthogonally polarized beamlets that are spatially separated from one another; a second polarization changer for changing the polarization of one or both of the third and fourth beamlets such that said third and fourth beamlets both have a second polarization opposite the first polarization; a second dispersive element for separating each of the third and fourth beamlets into respective third and fourth sets of component beamlets corresponding to different wavelengths, each component beamlet in the third set having a corresponding component beamlet in the fourth set at the same wavelength; a polarization beam combiner for combining the first and third sets of component beamlets and the second and fourth sets of component beamlets; and a reflective spatial light modulator having a plurality of individually activated modulating elements each corresponding to a respective one of the different wavelengths of the component beamlets, wherein each composite beamlet is directed at a modulating element of corresponding wavelength with component beamlets of the first and third set impinging upon the corresponding modulating element from a first incoming path and component beamlets of the second and fourth set impinging upon the corresponding modulating element from a second incoming path, each modulating element selectively attenuates and reflects the incident component beamlets such that a first outgoing path for each reflected component beamlet of the first and third sets are superimposed on the second incoming path and a second outgoing path for each reflected component beamlet of the second and fourth sets are superimposed on the first incoming path.
- 23. The dynamic spectral equalizer of claim 22, wherein each of the sets of reflected component beamlets are received by said polarization beam combiner, which separates the first and third sets of reflected component beamlets from one another and separates the second and fourth sets of reflected component beamlets from one another.
- 24. The dynamic spectral equalizer of claim 23, wherein said polarization beam combiner respectively redirects the first and second sets of reflected component beamlets along the path from which the second and first sets of component beamlets were received from said first dispersive element, and respectively redirects the third and fourth sets of reflected component beamlets along the path from which the fourth and third sets of component beamlets were received from said second dispersive element.
- 25. The dynamic spectral equalizer of claim 24, wherein said first dispersive element recombines the reflected component beamlets of the first and second sets to output first and second reflected beamlets, and wherein said second dispersive element recombines the reflected component beamlets of the third and fourth sets to output third and fourth reflected beamlets.
- 26. The dynamic spectral equalizer of claim 25, wherein said first polarization changer receives the second reflected beamlet and changes the polarization of the second reflected beamlet to be orthogonally polarized with respect to the first reflected beamlet, said second polarization changer receives one or both of the third and fourth beamlets and changes the polarization of the received reflected beamlet to be orthogonally polarized with respect to the other of the third and fourth reflected beamlet.
- 27. The dynamic spectral equalizer of claim 26, wherein said first polarization separator recombines the first and second orthogonally polarized reflected beamlets to provide a first output beam, and said first polarization separator recombines the third and fourth orthogonally polarized reflected beamlets to provide a second output beam.
- 28. The dynamic spectral equalizer of claim 27, wherein the first output beam is coupled to a first common fiber from which the first input beam was received, and the second output beam is coupled to a second common fiber from which the second input beam was received.
- 29. The dynamic spectral equalizer of claim 22 and further comprising a retarder disposed between said reflective spatial light modulator and said polarization beam combiner.
- 30. The dynamic spectral equalizer of claim 22, wherein said reflective spatial light modulator is selected from a group consisting of a reflective liquid crystal device, a pixellated birefringent crystal array, a plurality of MEMs devices, and an array of variable filters.
- 31. The dynamic spectral equalizer of claim 22, wherein said reflective spatial light modulator is a reflective liquid crystal device.
- 32. The dynamic spectral equalizer of claim 22, wherein said first and second polarization changers are selected from a group consisting of a polarization rotator, a retardation plate, a crystal rotator, and a liquid crystal.
- 33. The dynamic spectral equalizer of claim 22, wherein said first and second polarization beam separators comprise one or more elements selected from the group consisting of a pair of beam polarizing beamsplitters, a birefringent plate, a polarizing prism, and a polarization beam splitting slab.
- 34. The dynamic spectral equalizer of claim 22, wherein said first and second dispersive elements are selected from a group consisting of a prism, a grating, and a grism.
- 35. The dynamic spectral equalizer of claim 22, wherein said polarization beam combiner comprises one or more optical elements selected from a group consisting of a polarizing beam combining prism, a birefringent plate, polarizing prisms, and polarization beamsplitting slabs.
- 36. A wavelength selective switch comprising:
a first polarization beam separator for separating a first input composite beam into first and second orthogonally polarized composite beamlets that are spatially separated from one another; a first polarization changer for changing the polarization of the first composite beamlet such that said first and second composite beamlets both have a first polarization; a first dispersive element for separating each of the first and second composite beamlets into respective first and second sets of component beamlets corresponding to different wavelengths, each component beamlet in the first set having a corresponding component beamlet in the second set at the same wavelength and each such pair of component beamlets constituting a channel signal pair; a second polarization beam separator for separating a second input composite beam into third and fourth orthogonally polarized composite beamlets that are spatially separated from one another; a second polarization changer for changing the polarization of one or both of the third and fourth composite beamlets such that said third and fourth composite beamlets both have a second polarization opposite the first polarization; a second dispersive element for separating each of the third and fourth composite beamlets into respective third and fourth sets of component beamlets corresponding to different wavelengths, each component beamlet in the third set having a corresponding component beamlet in the fourth set at the same wavelength and each such pair of component beamlets constituting a channel signal pair; a polarization beam combiner for combining the first and third sets of component beamlets and the second and fourth sets of component beamlets; and a reflective spatial light modulator having a plurality of individually activated modulating elements each corresponding to a respective one of the different wavelengths of the component beamlets and thereby each corresponding to a channel signal pair from the first input composite signal and a channel signal pair from the second input composite signal, wherein each composite beamlet is directed at a modulating element of corresponding wavelength with component beamlets of the first and third set impinging upon the corresponding modulating element from a first incoming path and component beamlets of the second and fourth set impinging upon the corresponding modulating element from a second incoming path, each modulating element selectively changes the polarization of the incident component beamlets such that the two impinging channel signal pairs have different polarizations, said reflective spatial light modulator also reflects the incident component beamlets such that a first outgoing path for each reflected component beamlet of the first and third sets are superimposed on the second incoming path and a second outgoing path for each reflected component beamlet of the second and fourth sets are superimposed on the first incoming path.
- 37. The wavelength selective switch of claim 36, wherein each of the sets of reflected component beamlets are received by said polarization beam combiner, which separates the sets of reflected component beamlets from one another and redirects the sets reflected component beamlets towards one of said first and second dispersive elements based upon their polarization as selectively modified by said reflective spatial light modulator, wherein the reflected component beamlets of a channel signal pair are redirected towards the same dispersive element.
- 38. The wavelength selective switch of claim 37, wherein said first dispersive element recombines the reflected component beamlets of the received sets to output first and second reflected composite beamlets, and wherein said second dispersive element recombines the reflected component beamlets of the third and fourth sets to output third and fourth reflected composite beamlets.
- 39. The wavelength selective switch of claim 38, wherein said first polarization changer receives the second reflected composite beamlet and changes the polarization of the second reflected composite beamlet to be orthogonally polarized with respect to the first reflected composite beamlet, said second polarization changer receives one or both of the third and fourth composite beamlets and changes the polarization of the received reflected composite beamlet to be orthogonally polarized with respect to the other of the third and fourth reflected composite beamlet.
- 40. The wavelength selective switch of claim 39, wherein said first polarization separator recombines the first and second orthogonally polarized reflected composite beamlets to provide a first output beam, and said first polarization separator recombines the third and fourth orthogonally polarized reflected composite beamlets to provide a second output beam.
- 41. The wavelength selective switch of claim 40, wherein the first output beam is coupled to a first common fiber from which the first input composite beam was received, and the second output beam is coupled to a second common fiber from which the second input composite beam was received.
- 42. The wavelength selective switch of claim 41 and further comprising:
a first input fiber through which the first input composite beam is transmitted; a second input fiber through which the second input composite beam is transmitted; a first output fiber; a second output fiber; a first circulator coupled to said first input fiber, said first output fiber, and said first common fiber, said first circulator receives the first input composite beam from said first input fiber and directs the first input composite beam to said first common fiber, said first circulator further receiving the first output beam from said first common fiber and directs the first output beam to said first output fiber; and a second circulator coupled to said second input fiber, said second output fiber, and said second common fiber, said second circulator receives the second input composite beam from said second input fiber and directs the second input composite beam to said second common fiber, said second circulator further receiving the second output beam from said second common fiber and directs the second output beam to said second output fiber.
- 43. The wavelength selective switch of claim 36 and further comprising a lens disposed between said polarization beam combiner and said reflective spatial light modulator for focusing beams onto said reflective spatial modulator and for collimating reflected beams from said reflective spatial light modulator.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of priority under 35 U.S.C. §119(e) for U.S. Provisional Patent Application No. 60/283,592 entitled “DYNAMIC SPECTRAL EQUALIZER AND WAVELENGTH SELECTIVE SWITCH HAVING EXTREMELY LOW POLARIZATION DEPENDENT LOSS AND POLARIZATION MODE DISPERSION,” filed on Apr. 13, 2001 by Scott A. Bradley et al., the entire disclosure of which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60283592 |
Apr 2001 |
US |