Claims
- 1. An optical waveguide comprising:
a) a length of waveguide; and b) at least one discrete longitudinal section having increased photosensitivity with respect to other portions of the waveguide.
- 2. The waveguide of claim 1, wherein the longitudinal section has a photosensitivity at least two-times greater than the rest of the length of waveguide.
- 3. The waveguide of claim 1 comprising a plurality of discrete longitudinal sections, wherein at least one section has a different photosensitivity than other sections.
- 4. The waveguide of claim 1, wherein the waveguide is an optical fiber having a core region and at least one cladding layer and the longitudinal section has increased photosensitivity along the core region.
- 5. The waveguide of claim 1, wherein the waveguide is an optical fiber having a core region and at least one cladding layer and the longitudinal section has increased photosensitivity along both the core region and at least one cladding layer.
- 6. The waveguide of claim 1, wherein the longitudinal section includes a hydroxyl band.
- 7. The waveguide of claim 6, wherein the hydroxyl band has an absorption in the 1410 nm absorption region; the waveguide further comprising:
a) a short wavelength absorption band having a magnitude >0.1 dB/cm at wavelengths less than or equal to 800 nm; b) where neither the hydroxyl band nor the short wavelength band are present in the waveguide outside of the at least one longitudinal section.
- 8. The waveguide of claim 6, including a short wavelength absorption band having a magnitude greater than 0.1 dB/cm at wavelengths less than or equal to 800 nm.
- 9. The waveguide of claim 7, wherein neither the hydroxyl band nor the short wavelength band are present in the waveguide outside of the at least one longitudinal portion with increased photosensitivity.
- 10. The waveguide of claim 6, having a first and a second discrete longitudinal portions, wherein the hydroxyl band in the first portion has a greater attenuation than the hydroxyl band in the second portion.
- 11. The waveguide of claim 10, wherein the first and second portions are adjacent to each other.
- 12. The waveguide of claim 6, having a plurality of discrete longitudinal portions, each portion having a different attenuation value in the respective hydroxyl band.
- 13. The waveguide of claim 10, wherein the plurality of discrete longitudinal portions are sequentially adjacent to each other and the attenuation values follow a predetermined function.
- 14. An optical device comprising:
a) a length of optical fiber; and b) a section of increased refractive index along the length of optical fiber.
- 15. The optical device of claim 14, including a hydroxyl absorption band along the section of increased refractive index.
- 16. An optical device comprising:
a) a length of optical fiber; b) at least one grating along the length of optical fiber; and c) a hydroxyl absorption band along the grating.
- 17. The optical device of claim 16, wherein the grating is a Bragg grating.
- 18. The optical device of claim 16, the hydroxyl band including an absorption peak.
- 19. The optical device of claim 16, wherein both the grating and the hydroxyl band are confined to a discrete longitudinal portion
- 20. The optical device of claim 16, wherein the grating has a refractive index that changes by <20% due to annealing at 300 C. for 10 minutes.
- 21. A method for writing an optical grating comprising the steps of:
a) providing a length of optical waveguide comprising at least one discrete longitudinal section of the optical waveguide, the section having:
i) a hydroxyl band with absorption in the 1410 nm absorption region; ii) a short wavelength absorption band having a magnitude >0.1 dB/cm at wavelengths less than or equal to 800 nm; iii) where neither the hydroxyl band nor the short wavelength band are present in the waveguide outside of the at least one longitudinal section; b) exposing only one or more of the at least one longitudinal sections to a patterned source of actinic radiation.
- 22. The method of claim 21,
a) wherein the step of providing comprises providing a waveguide having a first and a second discrete longitudinal sections, wherein the hydroxyl band in the first section has a greater attenuation than the hydroxyl band in the second section; and b) wherein the step of exposing includes using the same writing conditions on both sections.
- 23. The method of claim 21, wherein the step of providing a waveguide includes providing a waveguide having a plurality of discrete longitudinal sections, each section having a different attenuation value in the respective hydroxyl band.
- 24. The method of claim 23, wherein the step of exposing includes using the same writing conditions in each section to create a plurality of gratings having different center wavelengths and percent reflectivity.
- 25. The method of claim 24, wherein the plurality of discrete longitudinal sections are sequentially adjacent to each other and the attenuation values follow a predetermined function.
- 26. The waveguide of claim 1, further comprising a write-through coating.
- 27. The waveguide of claim 26, wherein the sections include tags to identify their location in the length of waveguide.
- 28. The optical device of claim 14, the optical fiber including a write-through coating.
RELATED APPLICATIONS
[0001] The present application is a continuation-in-part of commonly-assigned U. S. patent application No. 10/028,838 entitled “Apparatus For Selective Photosensitization Of Optical Fiber”, filed Dec. 20, 2001, which is hereby incorporated by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10028838 |
Dec 2001 |
US |
Child |
10323954 |
Dec 2002 |
US |