Claims
- 1. A programmable optical demultiplexer arranged to receive a composite input signal containing components at N different wavelengths from an optical input port, and independently distribute the input signal components among K output ports, comprising
a first optical beam diffracting means, a first optical beam focusing means aligned to said optical input port and arranged to collimate the input signal, a micro-lens array containing K lenses, each lens aligned to a respective one of said K output ports, means for directing the collimated input signal to be incident on said first optical beam diffracting means, whereby said components are angularly dispersed at distinct propagation angles according to wavelength, thereby forming N separate beams having different wavelengths, a micro-mirror array containing N tilting micro-mirrors, a second optical beam focusing means arranged to collect each of said N separate beams and generate, for each said beam, a converging beam focused onto a particular micro-mirror in said micro-mirror array, and means for individually controlling each mirror in said micro-mirror array to reflect the incident beam in a desired direction, such that said beam (a) is collimated by a third optical beam focusing means, (b) redirected to a second optical beam diffracting means, and (c) coupled from said second optical beam diffracting means through a particular lens in said micro-lens array to a desired one of said output ports.
- 2. The invention defined in claim 1, wherein said first, second and third optical beam focusing means comprises one or more lenses.
- 3. The invention defined in claim 1, wherein said first and second optical beam diffracting means is a diffraction grating.
- 4. The invention defined in claim 1 wherein said directing means is a lens.
- 5. The invention defined in claim 1 wherein said directing means is an imaging system including multiple lenses.
- 6. The invention defined in claim 1 wherein said directing means is free space propagation of the collimated beams directly onto said optical beam diffracting means.
- 7. The invention defined in claim 1 wherein said micro-lens array is a linear array.
- 8. The invention defined in claim 1 wherein said micro-lens array is a two-dimensional array.
- 9. The invention defined in claim 1 wherein the number of output ports K and optical wavelength components N are independent.
- 10. The invention defined in claim 9 wherein K=N and each wavelength component can be assigned to any output port.
- 11. The invention defined in claim 9 wherein K<N and more than one wavelength is applied to an output port.
- 12. The invention defined in claim 9 wherein K>N and one or more output ports are not used.
- 13. A programmable multiplexer in which K input signals each containing one or more different wavelengths, said K input signals cumulatively containing a total of N different wavelengths, are received from a plurality of K optical input ports and combined at a single output port, comprising
a microlens array that contains K+1 lenses, wherein (a) one lens is aligned with the output port, while the remaining lenses are aligned each to a corresponding input port, and wherein (b) each input signal is collimated by a respective lens in said microlens array, a micro-mirror array containing N tilting micro-mirrors means for directing the resultant collimated beam originating from each input port to be incident on a diffraction grating, which diffracts the optical signal as a function of its wavelength, said diffraction grating being arranged such that each of the separate beams, which has a unique wavelengths and therefore distinct propagation angle, propagates to a particular micro-mirror in said micro-mirror array, and means for individually controlling each mirror in the array to reflect the incident beam representing a corresponding wavelength in a desired direction, such that it will be redirected to a single location on the diffraction grating, and coupled from the diffraction grating to the output port through the particular lens in the micro-lens array that is aligned with the output port.
- 14. The invention defined in claim 13 wherein the number of input ports K and optical wavelength components N are independent.
- 15. The invention defined in claim 13 wherein K=N, so that each wavelength component can originate at any input port.
- 16. The invention defined in claim 13 wherein K<N, and more than one wavelength is applied to an input port.
- 17. The invention defined in claim 13 wherein K>N, and one or more input ports are not used.
- 18. An optical demultiplexer arranged to receive a composite optical signal containing multiple wavelengths, and direct each of said wavelengths to a desired one of a plurality of separate output ports, comprising a diffraction grating,
first means for directing said composite signal to said diffraction grating, whereby said multiple wavelengths are angularly dispersed at distinct propagation angles according to wavelength, thereby forming N separate beams having different wavelengths, a beam modifying array having a plurality of elements, second means for directing said N separate beams to individual ones of said elements in said beam modifying array, and means for controlling the elements in said beam modifying array such that each of said N separate beams after modification from said beam modifying elements are directed to a desired one of said plurality of separate output ports.
- 19. The invention defined in claim 18 wherein said elements in said beam modifying array are tilting mirrors
- 20. The invention defined in claim 18 wherein said elements in said beam modifying array are translating rooftop prisms.
- 21. The invention defined in claim 18 wherein said optical demultiplexer further includes means for combining two or more of said reflected beams for application to a particular one of said plurality of separate output ports.
- 22. The invention defined in claim 21 wherein said means for combining includes an optical beam diffracting means.
- 23. The invention defined in claim 18 wherein said first directing means includes a lens in a micro-lens array.
- 24. The invention defined in claim 18 wherein each of said N separate beams are directed to a desired one of said plurality of separate output ports via other lenses in said micro-lens array.
- 25. The invention defined in claim 18 wherein said second directing means includes a lens.
- 26. The invention defined in claim 25 wherein each of said separate beams is directed by said lens to be incident on said diffraction grating.
- 27. A programmable optical switch in which r input signals each containing one or more different wavelengths, said r input signals cumulatively containing a plurality of different wavelengths, are received from a plurality of r optical input ports and one or more of said wavelengths are made available at each of s different output ports, comprising
a microlens array that contains r+s lenses, wherein (a) one lens is aligned with each of a corresponding one of said s output ports, while the remaining lenses are aligned each to a corresponding one of said r input ports, and wherein (b) each input signal is collimated by a respective lens in said microlens array, a micro-mirror array containing a plurality of tilting micro-mirrors, means for directing the resultant r collimated beams originating from each of said r input ports to be incident on a diffraction grating, which diffracts the r optical signals as a function of their respective wavelengths, said diffraction grating being arranged such that each of the separate beams, which have different wavelengths and therefore distinct propagation angles, propagate to a particular micro-mirror in said micro-mirror array, and means for individually controlling each mirror in the array to reflect the incident beam representing a corresponding wavelength in a desired direction, such that it will be redirected to a location on the diffraction grating, and coupled from the diffraction grating to one of said s output ports through the particular lens in the micro-lens array that is aligned with said one output port.
- 28. The invention defined in claim 27 wherein said r input signals contain N separate wavelengths, and wherein said micro-mirror array contains at least N mirrors.
- 29. The invention defined in claim 27 wherein said directing means includes a lens.
- 30. The invention defined in claim 29 wherein said N separate beams are focused by said lens.
- 31. The invention defined by claim 27 wherein said micro-lens array is a linear array.
- 32. The invention defined by claim 27 wherein said micro-lens array is a two-dimensional array.
- 33. The invention defined in claim 27 wherein said r input signals contain N separate wavelengths, and wherein said micro-mirror array contains less than N mirrors.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims priority of Provisional Application Serial No. 60/300272 filed on Jun. 22, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60300272 |
Jun 2001 |
US |