Claims
- 1. An optical apparatus, comprising:
a glass monolithic structure which includes a plurality of optical fiber elements, wherein said glass monolithic structure is not an optical fiber.
- 2. An optical apparatus as recited in claim 1, wherein said optical filter elements are chosen from the group consisting essentially of: Bragg gratings; holographic filters; and guided mode resonance filters.
- 3. An optical apparatus as recited in claim 1, wherein said optical filter elements are interferometric optical elements.
- 4. An optical apparatus as recited in claim 1, wherein said glass monolithic structure includes a melted photosensitive glass substrate.
- 5. An optical apparatus as recited in claim 4, wherein said photosensitive glass substrate has a molecular hydrogen content of greater than approximately 1017H2 molecules/cm3 and a flurorine content of approximately 6% weight percent or less of fluorine.
- 6. An optical apparatus as recited in claim 1, wherein said optical filter elements are arranged in an M×N array, where M and N are integers.
- 7. An optical apparatus as recited in claim 1, wherein the apparatus further comprises:
a plurality of said glass monolithic structures, each of which has an M×N array of said optical filter elements; and said plurality of said glass monolithic structures are arranged to form an J×N array of said optical filter elements, where J, M and N are intergers.
- 8. An optical apparatus as recited in claim 6, wherein said optical filter elements of said M×N array each reflect one of a plurality wavelength channels 1, . . . , n.
- 9. An optical apparatus as recited in claim 8, wherein said optical filter elements are arranged to reflect contiguous wavelength channels.
- 10. An optical apparatus as recited in claim 8, wherein said optical filter elements are not arranged to reflect contiguous wavelength channels.
- 11. An optical apparatus as recited in claim 7, wherein said optical filter elements of each of said M×N arrays each reflect one of a plurality of wavelength channels 1, . . . , n.
- 12. An optical apparatus as recited in claim 11, wherein said optical filter elements are arranged to reflect contiguous wavelength channels.
- 13. An optical apparatus as recited in claim 11, wherein said optical filter elements are not arranged to reflect contiguous wavelength channels.
- 14. An optical apparatus, comprising:
at least one glass monolithic structure which includes a plurality of optical filters; and at least one device which selectively aligns an optical input and an optical output to one of said plurality of optical filters.
- 15. An optical apparatus as recited in claim 14, wherein said device effects dimensional motion of said glass monolithic structure.
- 16. An optical apparatus as recited in claim 14, wherein said device effects motion of said optical input and said optical output.
- 17. An optical apparatus as recited in claim 14, wherein said input and said output are a collimator pair.
- 18. An optical apparatus as recited in claim 14, wherein an output collimator is selectively aligned with one of said plurality of optical filter elements to receive an optical signal which is transmitted through said optical filter element.
- 19. An optical apparatus as recited in claim 14, wherein said optical filter elements are chosen from the group consisting essentially of: Bragg gratings; holographic filters; and guided mode resonance filters.
- 20. An optical apparatus as recited in claim 14, wherein said optical filter elements are interferometric optical elements.
- 21. An optical apparatus as recited in claim 14, wherein said glass monolithic structure includes a melted photosensitive glass substrate.
- 22. An optical apparatus as recited in claim 14, wherein said photosensitive glass substrate has a molecular hydrogen content of greater than approximately 1017H2 molecules/cm3 and a flurorine content of approximately 6% weight percent or less of fluorine.
- 23. An optical apparatus as recited in claim 18, wherein said output collimator is optically coupled to an input of another optical apparatus, forming a cascaded structure.
- 24. An optical apparatus as recited in claim 14, further comprising: a plurality of said glass monolithic structures each of which include an M×N array of optical filter elements, and said plurality of glass monolithic structures are arranged to form a J×N array of said optical filter elements, where J, M and N are integers.
- 25. An optical apparatus as recited in claim 24, wherein each of said plurality of monolithic glass structures is disposed proximate a respective collimator, pair; and each of said collimator pairs is selectively aligned by a respective one of said devices to a selected one of said optical filter elements by translational motion.
- 26. A method of adding/dropping an optical signal, comprising:
providing at least one glass monolithic structure which includes a plurality of optical filters elements; providing at least one optical input and at least one optical output; and selectively aligning the optical input and the optical output to one of said plurality of optical filters elements.
- 27. A method as recited in claim 26, wherein said optical filter elements are chosen from the group consisting essentially of: Bragg gratings; holographic filters; and guided mode resonance filters.
- 28. A method as recited in claim 26, wherein said optical filter elements are interferometric optical elements.
- 29. A method as recited in claim 26, wherein said glass monolithic structure includes a melted photosensitive glass substrate.
- 30. A method as recited in claim 26, wherein said photosensitive glass substrate has a molecular hydrogen content of greater than approximately 1017H2 molecules/cm3 and a flurorine content of approximately 6% weight percent or less of fluorine.
- 31. A method as recited in claim 26, wherein an output collimator is selectively aligned with one of said plurality of optical filter elements to receive an optical signal which is transmitted through said optical filter element.
- 32. A method as recited in claim 31, wherein said output collimator is optically coupled to an input of another optical apparatus, forming a cascaded structure.
- 33. A method as recited in claim 26, further comprising: a plurality of said glass monolithic structures each of which include an M×N array of optical filter elements, and said plurality of glass monolithic structures are arranged to form a J×N array of said optical filter elements, where J, M and N are integers.
- 34. An optical apparatus, comprising:
a bulk glass monolithic structure which includes a plurality of optical fiber elements.
- 35. An optical apparatus as recited in claim 34, wherein said optical filter elements are chosen from the group consisting essentially of: Bragg gratings; holographic filters; and guided mode resonance filters.
- 36. An optical apparatus as recited in claim 34, wherein said optical filter elements are interferometric optical elements.
- 37. An optical apparatus as recited in claim 34, wherein said bulk glass monolithic structure includes a melted photosensitive glass substrate.
- 38. An optical apparatus as recited in claim 37, wherein said photosensitive glass substrate has a molecular hydrogen content of greater than approximately 1017H2 molecules/cm3 and a flurorine content of approximately 6% weight percent or less of fluorine.
- 39. An optical apparatus as recited in claim 34, wherein said optical filter elements are arranged in an M×N array, where M and N are integers.
- 40. An optical apparatus as recited in claim 34, wherein the apparatus further comprises:
a plurality of said glass monolithic structures, each of which has an M×N array of said optical filter elements; and said plurality of said glass monolithic structures are arranged to form an J×N array of said optical filter elements, where J, M and N are intergers.
- 41. An optical apparatus as recited in claim 39, wherein said optical filter elements of said M×N array each reflect one of a plurality wavelength channels 1, . . . , n.
- 42. An optical apparatus as recited in claim 41, wherein said optical filter elements are arranged to reflect contiguous wavelength channels.
- 43. An optical apparatus as recited in claim 41, wherein said optical filter elements are not arranged to reflect contiguous wavelength channels.
- 44. An optical apparatus as recited in claim 41, wherein said optical filter elements of each of said M×N arrays each reflect one of a plurality of wavelength channel 1, . . . , n.
- 45. An optical apparatus as recited in claim 44, wherein said optical filter elements are arranged to reflect contiguous wavelength channels.
- 46. An optical apparatus as recited in claim 44, wherein said optical filter elements are not arranged to reflect contiguous wavelength channels.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application is related to U.S. patent application Ser. Nos. (Attorney Docket Nos.: CRNG.029 and CRNG.033) entitled “Monolithic Filter Array” and “Tunable Optical Filter Array and Method of Use,” respectively, both of which are filed on even date herewith. The inventions described in these applications are assigned to the assignee of the present invention, and the disclosures of these applications are incorporated by references herein and for all purposes.