Claims
- 1. An optical switching core, comprising
a first plurality of beam directing devices, wherein each of said first plurality of beam directing devices redirects an incoming optical beam to at least one of a plurality of output ports within a scan area; and a convergence lens, optically coupled to at least a portion of said first plurality of beam directing devices, for shifting the scan area of at least said portion of said first plurality of beam directing devices toward an optical axis of said switch core.
- 2. The optical switching core of claim 1 wherein said convergence lens comprises a plano-convex lens.
- 3. The optical switching core of claim 1 wherein said convergence lens comprises a meniscus lens.
- 4. The optical switching core of claim 1 further comprising a plurality of optical collimators for transmitting each of said plurality of incoming optical beams to a unique one of said first plurality of beam directing devices.
- 5. The optical switch core of claim 4 wherein said plurality of optical collimators comprises a plurality glass rod lenses.
- 6. The optical switch core of claim 4 wherein said plurality of optical collimators comprises a plurality of microlenses.
- 7. The optical switch core of claim 4 further comprising a collimator plate having a plurality of apertures, wherein said plurality of optical collimators are coupled to said plurality of apertures.
- 8. The optical switching core of claim 7 wherein said collimator plate further comprises one or more datums for passively aligning said plurality of optical collimators to said first plurality of beam directing devices.
- 9. The optical switching core of claim 1 further comprising a substrate, wherein said first plurality of beam directing devices are coupled to a first substrate surface and wherein said incoming optical beams traverse said substrate.
- 10. The optical switching core of claim 9 wherein said substrate comprises a multilayer ceramic with a plurality of apertures wherein said plurality of incoming optical beams traverse through said plurality of apertures.
- 11. The optical switching core of claim 9 wherein said substrate comprises a silicon wafer having a first antireflective coating on said first substrate surface and a second antireflective coating on a second substrate surface.
- 12. The optical switching core of claim 1 further comprising a first window having a plurality of reflective strips on a first portion of said first window for reflecting said plurality of incoming optical beams onto said first plurality of beam directing devices and wherein said plurality of redirected optical beams traverse through a second portion of said first window.
- 13. The optical switching core of claim 1 further comprising a second plurality of beam directing devices optically coupled to said convergence lens for redirecting said plurality of converged optical beams to a plurality of output ports.
- 14. A method for switching an optical signal, comprising
redirecting each of a plurality of incoming optical beams toward a unique scan area; and converging said plurality of redirected incoming optical beams to shift said scan areas towards an optical axis.
- 15. The method of claim 14 further comprising directing said plurality of incoming optical beams from a plurality of collimators to a plurality of reflective strips and directing said plurality of incoming optical beams from said plurality of reflective strips to said plurality of beam directing devices.
- 16. An optical switching core, comprising:
two or more beam directing arrays, wherein each of said beam directing arrays comprises a plurality of beam directing devices coupled to a substrate for directing a plurality of incoming optical beams to at least one of a plurality of ports within a scan area, wherein the substrate of each of said beam directing units is tilted relative to an optical axis; and two or more convergence lenses, wherein each of said two or more convergence lens is optically coupled to a distinct one of said beam directing arrays, for shifting the scan area of at least a portion of said plurality of beam directing devices toward an optical axis of said switch core.
- 17. The optical switching core of claim 16 wherein said two or more convergence lenses comprise two or more plano-convex lenses.
- 18. The optical switching core of claim 16 wherein said two or more convergence lenses comprise two or more meniscus lenses.
- 19. The optical switching core of claim 16 further comprising two or more collimating optics arrays wherein each of said collimating optics arrays comprise a plurality of optical collimators for transmitting each of said plurality of incoming optical beams to a unique one of said plurality of beam directing devices.
- 20. The optical switch core of claim 19 wherein said plurality of optical collimators comprises a plurality glass rod lenses.
- 21. The optical switch core of claim 19 wherein said plurality of optical collimators comprises a plurality of microlenses.
- 22. The optical switch core of claim 19 further comprising two or more collimator plates, wherein each of said two or more collimator plates is uniquely coupled to a unique one of said two or more beam directing arrays, and wherein each of said two or more collimator plates comprise a plurality of apertures, wherein said plurality of optical collimators are coupled to said plurality of apertures.
- 23. The optical switching core of claim 22 wherein said two or more collimator plates further comprise a plurality of datums for passively aligning said two or more collimating optics arrays with said two or more beam directing arrays.
- 24. An optical switching core, comprising:
a plurality of optical collimators coupled to a first surface of a substrate; a plurality of beam directing devices coupled to a second surface of said substrate wherein each of said plurality of optical collimators are optically coupled to a unique beam directing device that redirects incoming optical beams to at least one of a plurality of output ports within a scan area; and a convergence lens, optically coupled to said plurality of beam directing devices, for shifting the scan area of at least a portion of said plurality of beam directing devices toward an optical axis of said switch core.
- 25. The optical switching core of claim 24 wherein said convergence lens comprises a plano-convex lens.
- 26. The optical switching core of claim 24 wherein said convergence lens comprises a meniscus lens.
- 27. The optical switch core of claim 24 wherein said plurality of optical collimators comprises a plurality glass rod lenses.
- 28. The optical switch core of claim 24 wherein said plurality of optical collimators comprises a plurality of microlenses.
- 29. An optical switching core, comprising:
two or more beam directing arrays, wherein each of said beam directing arrays comprises a plurality of beam directing devices for redirecting a plurality of incoming optical beams to at least one of a plurality of output ports; and two or more beam combiners, wherein each of said two or more beam directing arrays is optically coupled to a unique one of said two or more beam combiners and wherein a normal of each of said two or more beam combiners shifts said plurality of redirected incoming optical beams received from said two or more beam directing arrays towards an optical axis.
- 30. The optical switching core of claim 29 wherein said two or more beam combiners comprise two or more refractive parallel plates.
- 31. The optical switching core of claim 29 wherein said two or more beam combiners comprise two or more faceted reflectors.
- 32. The optical switching core of claim 29 further comprising two or more collimating optics arrays wherein each of said collimating optics arrays comprise a plurality of optical collimators for transmitting each of said plurality of incoming optical beams to a unique one of said plurality of beam directing devices.
- 33. The optical switch core of claim 32 wherein said plurality of optical collimators comprises a plurality glass rod lenses.
- 34. The optical switch core of claim 32 wherein said plurality of optical collimators comprises a plurality of microlenses.
- 35. The optical switch core of claim 32 further comprising two or more collimator plates, wherein each of said two or more collimator plates is uniquely coupled to one of said two ore more beam directing arrays, wherein each of said two or more collimator plates comprise a plurality of apertures, and wherein said plurality of optical collimators are coupled to said plurality of apertures.
- 36. The optical switching core of claim 35 wherein said two or more collimator plates further comprise a plurality of datums for passively aligning said two or more collimating optics arrays with said two or more beam directing arrays.
- 37. An optical switching core, comprising:
a first beam directing array comprising a first plurality of beam directing devices for redirecting a first plurality of incoming optical beams to any one of a plurality of output ports; a first beam combiner optically coupled to said first plurality of beam directing devices, wherein a normal of said first beam combiner is tilted to shift said first plurality of redirected incoming optical beams received from said first plurality of beam directing devices towards an optical axis; a second beam directing array comprising a second plurality of beam directing devices for redirecting a second plurality of incoming optical beams to at least one of a plurality of output ports; and a second beam combiner optically coupled to said second plurality of beam directing devices, wherein a normal of said second beam combiner is tilted to shift said second plurality of redirected incoming optical beams received from said second plurality of beam directing devices towards said optical axis.
- 38. The optical switching core of claim 37 wherein said first and second beam combiners comprise two or more refractive parallel plates.
- 39. The optical switching core of claim 37 wherein said first and secomd beam combiners comprise two or more faceted reflectors.
- 40. An optical switching core, comprising:
two or more input beam directing arrays, wherein each of said beam directing arrays comprises a plurality of beam directing devices for redirecting a plurality of incoming optical beams to at least one of a plurality of output ports; two or more input beam combiners, wherein each of said beam directing arrays is optically coupled to a unique one of said two or more input beam combiners and wherein a normal of each of said input beam combiners is tilted to shift said plurality of redirected incoming optical beams received from said two or more input beam directing arrays towards an optical axis; and two or more output beam combiners optically coupled to said two or more input beam combiners and wherein a normal of each of said two or more output beam combiners is tilted to shift optical beams received from said input away from said optical axis.
- 41. A method for switching an optical signal, comprising
redirecting a plurality of incoming optical beams toward at least one of a plurality of output ports; and shifting said plurality of redirected beams towards an optical axis.
CROSS REFERENCE TO RELEATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Patent Application, Serial No. 60/277,479, entitled “HERMETIC MEMS TILE”, filed Mar. 19, 2001, and U.S. Provisional Patent Application, Serial No. 60/277,480, entitled “LENS FOR AN OPTICAL SWITCH” filed Mar. 19, 2001, the contents of both of which are hereby incorporated by reference.
Provisional Applications (2)
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Number |
Date |
Country |
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60277479 |
Mar 2001 |
US |
|
60277480 |
Mar 2001 |
US |