Claims
- 1. A directional integrated optical power monitor comprising:
(a) an unbroken portion of an optical fiber through which optical energy can propagate, said optical fiber having a core surrounded by a cladding, wherein said portion has material removed from said cladding thereby exposing a side surface through which at least some of said optical energy can be extracted, wherein said side surface terminates at a first end and a second end along said portion; (b) a bulk material residing over said side surface, wherein said bulk material has an index of refraction higher than the effective mode index of refraction of said optical fiber; and (c) a photodetector to capture said extracted optical energy, said photodetector being positioned at the place of maximum optical signal strength, said place being in close proximity to said first end or said second end of said side surface.
- 2. The power monitor of claim 1, wherein said bulk material is a polymer.
- 3. The power monitor of claim 2, wherein said photodetector is mounted in said polymer.
- 4. The power monitor of claim 1 further comprising a support block to which said portion of said optical fiber is secured, wherein said support block is selected from the group consisting of glass and metal, wherein said metal is Invar, Kovar, or a stainless steel metal alloy, and wherein said bulk material comprises a polymer or a glass overlay, said glass overlay having an optical surface positioned over said side surface.
- 5. The power monitor of claim 4, wherein said bulk material is a polymer and said photodetector is mounted in said polymer or to said support block.
- 6. The power monitor of claim 4, wherein said bulk material comprises a glass overlay, said support block is glass, and said power monitor further comprises a coupling agent disposed between said side surface and said optical surface of said glass overlay, wherein said coupling agent has an index of refraction approximately matching the index of refraction of the core of said optical fiber.
- 7. The power monitor of claim 6, wherein said photodetector is mounted to an end face of said glass overlay or to said support block.
- 8. The power monitor of claim 4, wherein said support block is a metal, and said bulk material comprises a glass overlay having a first and second metal bracket bonded thereto, wherein said first metal bracket is bonded to a first sidewall of said glass overlay, and said second metal bracket is bonded to a second sidewall of said glass overlay, each said metal bracket being bonded to a top surface of said metal support block, and said optical surface of said glass overlay being positioned over said side surface.
- 9. The power monitor of claim 8, wherein said photodetector is mounted to an end face of said glass overlay or to said support block.
- 10. The power monitor of claim 9 further comprising a coupling agent disposed between said side surface of said fiber and said optical surface of said glass overlay, wherein said coupling agent has an index of refraction approximately matching the index of refraction of the core of said optical fiber.
- 11. An optical power monitor assembly comprising said directional integrated optical power monitor of claim 4 in combination with a hermetic feedthrough, wherein said assembly comprises:
(a) a metal ferrule having a first end with a first opening, which opens into a first cavity in said ferrule, and having a second end with a second opening, which opens into a second cavity in said ferrule, said first cavity being in fluidic communication with said second cavity thereby forming a feedthrough hole, which extends from said first opening to said second opening; (b) a metal platform extending from said first end of said metal ferrule and supporting said directional integrated optical power monitor; (c) a section of bare optical fiber extending from said portion of optical fiber of said directional integrated optical power monitor, wherein said bare optical fiber is free of a protective buffer material cover, wherein said section of bare optical fiber enters said first cavity through said first opening of said ferrule, passing through said first cavity and into said second cavity; (d) a section of optical fiber having said protective buffer material cover thereon extending from said bare optical fiber in said second cavity and exiting said ferrule through said second opening; and (e) a glass solder material disposed in said first opening and residing in said first cavity, wherein said glass solder material adheres to and surrounds said bare optical fiber and adheres to an interior wall bordering said first cavity of said ferrule, to form a hermetic seal at said first opening.
- 12. The optical power monitor assembly of claim 11, wherein said bulk material of said directional integrated optical power monitor is a polymer, and said photodetector is mounted in said polymer or to said support block.
- 13. The optical power monitor assembly of claim 11, wherein said bulk material of said directional integrated optical power monitor comprises a glass overlay, said support block is glass, and wherein a coupling agent is disposed between said side surface of said portion of said optical fiber and said optical surface of said glass overlay, wherein said coupling agent has an index of refraction approximately matching the index of refraction of the core of said optical fiber, and wherein said photodetector is mounted to an end face of said glass overlay or to said support block.
- 14. The optical power monitor assembly of claim 11, wherein said support block of said directional integrated optical power monitor is a metal, and said bulk material comprises a glass overlay having a first and second metal bracket bonded thereto, wherein said first metal bracket is bonded to a first sidewall of said glass overlay, and said second metal bracket is bonded to a second sidewall of said glass overlay, each said metal bracket being bonded to a top surface of said metal support block, and wherein said optical surface of said glass overlay is positioned over said side surface, and wherein said photodetector is mounted to an end face of said glass overlay or to said support block.
- 15. The optical power monitor assembly of claim 14, wherein said directional integrated optical power monitor further comprises a coupling agent disposed between said side surface of said portion of said optical fiber and said optical surface of said glass overlay, wherein said coupling agent has an index of refraction approximately matching the index of refraction of the core of said optical fiber.
- 16. The optical power monitor assembly of claim 11, further comprising:
(f) an epoxy material extending from said second opening into said first cavity, wherein said epoxy material adheres to an interior wall bordering the second cavity of said ferrule and also contacts and adheres to said section of bare optical fiber.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the priority of U.S. Provisional Patent Application Serial No. 60/364,434, filed Mar. 15, 2002, U.S. Provisional Patent Application Serial No. 60/429,084, filed Nov. 26, 2002, and U.S. Provisional Patent Application entitled “Side-Polished Fiber in Metal Block”, filed Mar. 6, 2003 under Atty Dkt. No. 0953.104(P), the disclosures of which are incorporated herein by reference in their entireties.
[0002] This Application is related to the following U.S. Patent Applications/Patents:
[0003] Ser. No. 09/811,913, filed Mar. 19, 2001, entitled “VARIABLE OPTICAL ATTENUATOR EMPLOYING POLARIZATION MAINTAINING FIBER”, now U.S. Pat. No. ______ issued ______;
[0004] Ser. No. 09/812,097 filed Mar. 19, 2001, entitled “FIBER OTPIC POWER CONTROL SYSTEMS AND METHODS”, now U.S. Pat. No. ______ issued ______;
[0005] Ser. No. 09/605,110, filed Jun. 28, 2000, entitled “SINGLE CHANNEL ATTENUATORS”, now U.S. Pat. No. 6,483,981 issued Nov. 19, 2002;
[0006] Ser. No. 09/539,469, filed Mar. 30, 2000, entitled “CONTROLLABLE FIBER OPTIC ATTENUATORS EMPLOYING TAPERED AND/OR ETCHED FIBER SECTIONS”, now U.S. Pat. No. 6,466,729 issued Oct. 15, 2002;
[0007] Ser. No. 09/139,832, filed Aug. 25, 1998, entitled “BLOCKLESS TECHNIQUES FOR SIMULTANEOUS POLISHING OF MULTIPLE FIBER OPTICS”, now U.S. Pat. No. 6,374,011 issued Apr. 16, 2002;
[0008] Ser. No. 09/139,787, filed Aug. 25, 1998, entitled “BLOCKLESS FIBER OPTIC ATTENUATORS AND ATTENUATION SYSTEMS EMPLOYING DISPERSION TAILORED POLYMERS”, now U.S. Pat. No. 6,205,280 issued Mar. 20, 2001; and
[0009] Ser. No. 09/026,755, filed Feb. 20, 1998, entitled “FIBER OPTIC ATTENUATORS AND ATTENUATION SYSTEMS”, now U.S. Pat. No. 5,966,493 issued Oct. 12, 1999.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60364434 |
Mar 2002 |
US |
|
60429084 |
Nov 2002 |
US |
|
60452440 |
Mar 2003 |
US |