Claims
- 1. An optical subassembly comprising:a ferrule having at least one capillary extending axially through said ferrule, and a plurality of optical fibers, each having a core and a cladding, positioned inside of said at least one capillary, each of said optical fibers satisfying predetermined tolerance for position of the center of the core with respect to the center of the core of another of said plurality of fibers, wherein said tolerance for position of the center of the core is ≦ about 2.0 μm.
- 2. The optical subassembly of claim 1, wherein said tolerance for position of the center of the core comprises a tolerance for ovality of the fiber.
- 3. The optical subassembly of claim 1, wherein said tolerance for position of the center of the core comprises a tolerance for concentricity of the core within the fiber.
- 4. The optical subassembly of claim 1, wherein said tolerance for position of the center of the core comprises a tolerance for the outside diameter of the fiber.
- 5. The optical subassembly of claim 3, wherein the tolerance for said core concentricity is ≦1.0 μm.
- 6. The optical subassembly of claim 4, wherein the tolerance for the diameter of said fibers is ≦1.0 μm.
- 7. The optical subassembly of claim 2, wherein the tolerance for ovality of said fibers is ≦0.8 percent.
- 8. The optical subassembly of claim 3, wherein the tolerance for said core concentricity is ≦0.5 μm.
- 9. The optical subassembly of claim 4, wherein the tolerance for the diameter of said fiber is ≦0.5 μm.
- 10. The optical subassembly of claim 2, wherein the tolerance for ovality of said fibers is ≦0.4 percent.
- 11. The optical subassembly of claim 3, wherein the tolerance for said core concentricity is ≦0.1 μm.
- 12. The optical subassembly of claim 4, wherein the tolerance for the diameter of said fibers is ≦0.1 μm.
- 13. The optical subassembly of claim 2, wherein the tolerance for ovality of said fibers is ≦0.12 percent.
- 14. The optical subassembly of claim 1, wherein said tolerance for position of the center of the core comprises a tolerance for ovality of the fiber and a tolerance for concentricity of the core of within the fiber.
- 15. The optical subassembly of claim 1, wherein said tolerance for position of the center of the core comprises a tolerance for ovality of the fiber and a tolerance for the outer diameter of the fiber.
- 16. The optical subassembly of claim 1, wherein said tolerance for position of the center of the core comprises a tolerance for outer diameter of the fiber and a tolerance for concentricity of the core of within the fiber.
- 17. The optical subassembly of claim 1 wherein said tolerance for position of the center of the core comprises a tolerance for ovality of the fiber, a tolerance for outer diameter of the fiber, and a tolerance for concentricity of the core of within the fiber.
- 18. An optical subassembly comprising:a ferrule having a capillary extending axially through said ferrule; and at least one optical fiber positioned inside of said capillary, said optical fiber having a core and a cladding, said optical fiber satisfying a predetermined tolerances for core concentricity, wherein the tolerance for said core concentricity is ≦ about 0.1 μm.
- 19. A method of assembling an optical device comprising:providing a ferrule having at least one capillary extending axially through the ferrule; selecting a plurality of optical fibers by screening each fiber for manufacturing tolerances within predetermined limits, the manufacturing tolerances including any two or more of core/cladding concentricity tolerance, fiber diameter tolerance, and fiber ovality tolerance; and inserting the optical fibers in the at least one capillary of the ferrule.
- 20. The method of claim 19, wherein the plurality of optical fibers is selected so as to each have a core/cladding concentricity tolerance of less than about 1.0 μm.
- 21. The method of claim 19, wherein the plurality of optical fibers is selected so as to each have a fiber diameter tolerance of less than about 1.0 μm.
- 22. The method of claim 19, wherein the plurality of optical fibers is selected so as to each have an ovality tolerance of less than about 0.8 percent.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of U.S. patent application Ser. No. 09/599,168, filed on Jun. 22, 2000, entitled “THREE-PORT FILTER AND METHOD OF MANUFACTURE,” by Scott M. Hellman et al., now U.S. Pat. No. 6,343,166, the entire disclosure of which is incorporated herein by reference.
US Referenced Citations (32)
Non-Patent Literature Citations (4)
Entry |
Tomlinson, W.J., “Applications of GRIN-rod lenses in optical fiber communication systems,” Applied Optics, vol. 19, No. 7, Apr. 1, 1980. |
5 pages From Fluent Incorporated Web site (No Date). |
8 pages from www.ma.man.ac.uk (No Date). |
Structural Analysis in Microelectronics and Fiber Optics—1997-(pp. 34-54 of The Electrical and Electronic Packing Division—vol. 21). |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09/599168 |
Jun 2000 |
US |
Child |
10/131719 |
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US |