Claims
- 1. A method of fusing optical fiber, comprising:
Providing an angle-cleaved optical fiber formed of a silica glass; Providing a square-cleaved optical fiber formed of a non-silica glass; Placing the pair of optical fibers in an end-to-end configuration with a small gap separating the fibers; and Heating and moving the fibers together to form a fused joint.
- 2. The method of claim 1, wherein heating the fibers softens the square-cleaved optical fiber such it forms a matched angle to the angle-cleaved optical fiber in situ.
- 3. The method of claim 2, wherein heating the fibers does not soften the square-cleaved optical fiber.
- 4. The method of claim 3, wherein the fibers are heated asymmetrically to raise the temperature at the ends of the angle-cleaved optical fiber (Tsi) and the square-cleaved optical fiber (Tmc) such that Tsi<Tmc<Tmc-soft<Tmax at the gap between the fibers where Tmc-soft is the softening temperature of the non-silica glass and Tmax is a maximum temperature thereby softening only the square-cleaved fiber.
- 5. The method of claim 4, wherein Tmax is min (Tsi-soft, Tmc-melt, Tsi-trans, Tx) where Tmc-soft is the softening temperature of the silica glass, Tmc-melt is the melting temperature of the non-silica glass, Tsi-trans is the glass transition temperature of silica and Tx is the crystallization temperature of Si-x in a transition region at the fused joint.
- 6. The method of claim 4, wherein the step of asymmetrically heating the fibers includes:
Placing a heating element proximate to the angle-cleaved optical fiber at a distance do from the small gap that separates the fibers; and Activating the heating element to generate heat.
- 7. The method of claim 6, wherein the heating element comprises a pair of electrodes that are placed on either side of the angle-cleaved optical fiber to generate an arc that heats the angle-cleaved optical fiber.
- 8. The method of claim 1, further comprising refusing the fused joint.
- 9. The method of claim 1, wherein the angle-cleaved optical fiber comprises a core surrounded by a cladding which is angle-cleaved to form a tip, further comprising the step of polishing the tip of the angle-cleaved fiber flat back to at or near its core.
- 10. The method of claim 1, wherein the optical fibers each comprise a core surrounded by a cladding having the same diameter, the numerical aperture of said non-silica glass fiber being selected to match the mode field of the silica glass fiber.
- 11. The method of claim 1, wherein the optical fiber each comprise a core surround by a cladding, said silica fiber cladding having a larger diameter than said non-silica fiber cladding such that said non-silica fiber flares at the fused joint to equate the fiber's diameters thereby making the core of the non-silica fiber greater than that of the silica fiber, the numerical aperture of said non-silica fiber being selected so that its mode field substantially overlaps its core to match the mode field of the silica fiber.
- 12. The method of claim 1, wherein the non-silica glass is selected from a multi-component glass of phosphate, germanate or tellurite glass.
- 13. The method of claim 1, wherein the non-silica glass is a multi-component glass that comprises a glass network former selected of phosphorus oxide, germanate oxide or tellurite oxide from 30 to 80 percent, a glass network modifier MO from 2 to 40 percent, and a glass network intermediator L2O3 from 2 to 30 percent, wherein MO is selected from alkaline earth oxides and transition metal oxides consisting of BaO, BeO, MgO, SrO, CaO, ZnO, PbO and mixtures thereof, and L2O3 is selected from Al2O3, B2O3, Y2O3, La2O3, and mixtures thereof.
- 14. The method of claim 12, wherein said square-cleaved optical fiber is drawn with an outer cladding formed from a different multi-component glass having a softening temperature higher and a glass network that is more compatible with forming strong thermal diffusion bonds with the silica glass.
- 15. The method of claim 14, wherein the cross-sectional area of the outer cladding is at least fifty percent of the total cross-sectional area of the square-cleaved optical fiber.
- 16. The method of claim 14, wherein said outer cladding multi-component glass is a silicate glass that comprises a glass network of silicon oxide (SiO2) from 30 to 80 percent, a glass network modifier MO from 5 to 40 percent, and a glass network intermediator L2O3 from 5 to 30 percent, MO is selected from alkaline earth oxides and transition metal oxides consisting of BaO, BeO, MgO, SrO, CaO, ZnO, PbO and mixtures thereof, and L2O3 is selected from Al2O3, B2O3, Y2O3, La2O3, and mixtures thereof.
- 17. The method of claim 1, wherein the angle-cleaved fiber is cleaved with an angle of 80 to 84 degrees.
- 18. A method of fusing optical fiber, comprising:
Providing an angle-cleaved optical fiber formed of a silica glass having a softening temperature Tsi-soft; Providing a square-cleaved optical fiber formed of a multi-component glass selected from phosphate, germanate or tellurite having a softening temperature Tmc-soft that is lower than Tsi-soft; Placing the pair of optical fibers in an end-to-end configuration with a small gap separating the fibers; Asymmetrically heating the fibers to raise the temperature of the angle-cleaved optical fiber (Tsi) and the square-cleaved optical fiber (Tmc) such that Tsi-soft>Tsi>Tmc>Tmc-soft at the gap between the fibers thereby softening only the square-cleaved fiber; and Moving the fibers together such that the softened square-cleaved optical fiber forms a matched angle to the angle-cleaved optical fiber in situ thereby forming thermal diffusion bonds between the pair of fibers around a fused joint.
- 19. The method of claim 18, wherein Tsi<min(Tsi-soft, Tmc-melt, Tsi-trans, Tx) where Tmc-melt is the melting temperature of the non-silica glass, Tsi-trans is the glass transition temperature of silica and Tx is the crystallization temperature of Si-x in a transition region at the fused joint.
- 20. The method of claim 18, wherein the step of asymmetrically heating the fibers includes:
Placing a heating element proximate to the angle-cleaved optical fiber at a distance do from the small gap that separates the fibers; and Activating the heating element to generate heat.
- 21. The method of claim 18, further comprising refusing the fused joint.
- 22. The method of claim 18, wherein the angle-cleaved optical fiber comprises a core surrounded by a cladding which is angle-cleaved to form a tip, further comprising the step of polishing the tip of the angle-cleaved fiber flat back to at or near its core.
- 23. The method of claim 18, wherein the angle-cleaved fiber is cleaved with an angle of 80 to 84 degrees.
- 24. A method of fusing optical fiber, comprising:
Providing an angle-cleaved optical fiber having a core and cladding formed of a silica glass having a softening temperature Tsi-soft; Providing a square-cleaved optical fiber having a core and inner cladding formed of a multi-component glass with a softening temperature Tmc-soft and having an outer cladding formed from a different multi-component glass having a softening temperature Toc-soft so that Tmc-soft<Toc-soft<Tsi-soft; Placing the pair of optical fibers in an end-to-end configuration with a small gap separating the fibers; Asymmetrically heating the fibers to raise the temperature of the angle-cleaved optical fiber (Tsi) and the square-cleaved optical fiber (Tmc) such that Tsi-soft>Tsi>Tmc>Toc-soft at the gap between the fibers thereby softening only the square-cleaved fiber; and Moving the fibers together such that the softened square-cleaved optical fiber forms a matched angle to the angle-cleaved optical fiber in situ thereby forming thermal diffusion bonds between the pair of fibers around a fused joint.
- 25. The method of claim 24, wherein the cross-sectional area of the outer cladding is at least fifty percent of the total cross-sectional area of the square-cleaved optical fiber so that the optical performance at the fused joint is dictated by the core and inner cladding while mechanical performance is determined by the outer cladding of the square-cleaved fiber.
- 26. The method of claim 24, wherein said outer cladding multi-component glass is a silicate glass that comprises a glass network of silicon oxide (SiO2) from 30 to 80 percent, a glass network modifier MO from 5 to 40 percent, and a glass network intermediator L2O3 from 5 to 30 percent, MO is selected from alkaline earth oxides and transition metal oxides consisting of BaO, BeO, MgO, SrO, CaO, ZnO, PbO and mixtures thereof, and L2O3 is selected from Al2O3, B2O3, Y2O3, La2O3, and mixtures thereof.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims benefit of priority under 35 U.S.C. 120 to U.S. applications Ser. No. 09/963,727 entitled “Method of Fusion Splicing Silica Fiber with Low-Temperature Multi-Component Glass Fiber” filed on Sep. 26, 2001, the entire contents of which are incorporated by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09963727 |
Sep 2001 |
US |
Child |
10374001 |
Feb 2003 |
US |