Claims
- 1. An optical fiber having an operating wavelength λop, an apparent fundamental mode cutoff wavelength λfc, and an attenuation wavelength λa; wherein λop<λfc<λa, and wherein the optical loss of the fiber at λa is at least 1 dB/m greater than the loss at λop.
- 2. The optical fiber of claim 1, wherein the optical loss at λop is less than 100 dB/km.
- 3. The optical fiber of claim 1, wherein the optical loss at λop is less than 10 dB/km.
- 4. The optical fiber of claim 1, wherein the optical loss at λop is less than 4 dB/km.
- 5. The optical fiber of claim 1, wherein the optical loss of the fiber at λa is at least 1 dB/m greater than the loss at λop when the fiber is straight.
- 6. The optical fiber of claim 1, wherein the fiber is a single mode fiber at the operating wavelength λop.
- 7. The optical fiber of claim 6 in combination with a second optical fiber, wherein the optical fiber is spliced to the second optical fiber, and wherein the optical fiber has a mode field diameter at the operating wavelength λop that is within ±10% of the mode field diameter of the second optical fiber at the operating wavelength λop.
- 8. The optical fiber of claim 7, wherein the second optical fiber is a commercial telecommunications fiber.
- 9. The optical fiber of claim 8, wherein the optical fiber is fusion spliced to the second optical fiber such that the optical loss attributable to the splice is no more than 0.2 dB.
- 10. The optical fiber of claim 1, wherein the optical loss of the fiber at all wavelengths greater than 1.05 λfc is at least 1 dB/m greater than the loss at λop.
- 11. The optical fiber of claim 1, wherein the optical fiber has a core surrounded by a cladding, and wherein the core is photosensitive.
- 12. The optical fiber of claim 11, wherein the optical fiber core and cladding have substantially equal photosensitivity.
- 13. The optical fiber of claim 11, wherein the optical fiber core is sufficiently photosensitive that a 2% reflective Bragg grating refractive index structure may be written in the fiber by exposing it to an interference pattern from an ultraviolet laser source for less than about 5 minutes without first hydrogen loading the optical fiber.
- 14. The optical fiber of claim 11, further comprising a refractive index grating structure.
- 15. The optical fiber of claim 14, wherein said refractive index grating structure is selected from the group consisting of Bragg gratings and long period gratings.
- 16. The optical fiber of claim 1, comprising:
a core region with a diameter within the range of about 4.0 μm to about 10.0 μm; a depressed inner clad region with a diameter within the range of about 8 μm to about 50 μm; and an outer clad region; wherein the optical fiber has a raised refractive index within the range of about 0 to about 0.010 and a depressed refractive index within the range of about 0.002 to about 0.015.
- 17. The optical fiber of claim 16, wherein the DIC to core diameter ratio is within the range of about 2.0 to about 7.0.
- 18. An optical fiber filter adapted for use in a communications system, comprising:
an optical fiber having an operating wavelength λop, an apparent fundamental mode cutoff wavelength λfc, and an attenuation wavelength λa; wherein λop<λfc<λa, and wherein the optical loss of the fiber at λa is at least 1 dB/m greater than the loss at λop.
- 19. The optical fiber filter of claim 18, wherein the optical loss at λop is less than 100 dB/km.
- 20. The optical fiber filter of claim 18, wherein the optical loss at λop is less than 10 dB/km.
- 21. The optical fiber filter of claim 18, wherein the optical loss at λop is less than 4 dB/km.
- 22. The optical fiber filter of claim 18, wherein the optical loss of the fiber at λa is at least 1 dB/m greater than the λop when the fiber is straight.
- 23. The optical fiber filter of claim 18, wherein the filter is disposed within the communications system in the optical path between a first source which emits radiation at wavelength λop and a second source which emits radiation at wavelength λa.
- 24. The optical fiber filter of claim 23, wherein λop is within the range of about 950 nm to about 1010 nm.
- 25. The optical fiber filter of claim 23, wherein λop is within the range of about 1450 nm to about 1510 nm.
- 26. The optical fiber filter of claim 23, wherein λop is within the range of about 1520 nm to about 1610 nm.
- 27. The optical fiber filter of claim 23, wherein the first source is a first laser and the second source is an optical amplifier.
- 28. The optical fiber filter of claim 27, wherein the optical amplifier is an erbium-doped fiber amplifier.
- 29. The optical fiber filter of claim 23, wherein the first source is a first laser and the second source is an second laser.
- 30. The optical fiber filter of claim 29, wherein the second laser is an erbium-doped fiber laser.
- 31. The optical fiber filter of claim 23, wherein the optical fiber further comprises a refractive index grating structure.
- 32. The optical fiber filter of claim 31, wherein said refractive index grating structure is selected from the group consisting of Bragg gratings and long period gratings.
- 33. The optical fiber filter of claim 32, wherein said refractive index grating structure is a Bragg grating which reflects at least a portion of the light of wavelength λop, and further wherein the first source emits light of wavelength λop.
- 34. The optical fiber filter of claim 33, wherein the Bragg grating is adapted to function as an external cavity reflector to stabilize the output of the first source at wavelength λop.
- 35. The optical fiber filter of claim 18, wherein the DIC to core diameter ratio is within the range of about 2.0 to about 7.0.
- 36. A pump laser assembly, comprising:
a first laser equipped with an optical fiber pigtail, said optical fiber pigtail having an operating wavelength λop, an apparent fundamental mode cutoff wavelength λfc, and an attenuation wavelength λa; wherein λop<λfc<λa, and wherein the optical loss of the optical fiber of the fiber pigtail at λa is at least 1 dB/m greater than the loss at λop.
- 37. The pump laser assembly of claim 36, wherein the optical loss at λop is less than 100 dB/km.
- 38. The pump laser assembly of claim 36, wherein the optical loss at λop is less than 10 dB/km.
- 39. The pump laser assembly of claim 36, wherein the optical loss at λop is less than 4 dB/km.
- 40. The pump laser assembly of claim 36, wherein the optical loss of the fiber pigtail at λa is at least 1 dB/m greater than the loss at λop when the fiber is straight.
- 41. The pump laser assembly of claim 36, wherein the optical fiber contains a Bragg grating.
- 42. The pump laser assembly of claim 41, wherein the Bragg grating functions as an external cavity reflector to stabilize the output of the laser at wavelength λop.
- 43. The pump laser assembly of claim 36, adapted to pump a first source which emits radiation at wavelength λa.
- 44. The pump laser assembly of claim 43, wherein said first source is a second laser.
- 45. The pump laser assembly of claim 43, wherein said first source is an optical amplifier.
- 46. The pump laser assembly of claim 36, wherein the DIC to core diameter ratio is within the range of about 2.0 to about 7.0.
- 47. A fiber optic communication system, comprising:
a source which emits radiation at operating wavelength λop; an accepting device adapted to receive radiation at wavelength λop; and an optical fiber filter in optical communication with said light source and said accepting device; wherein said optical fiber filter comprises an optical fiber having an operating wavelength λop, an apparent fundamental mode cutoff wavelength λfc, and an attenuation wavelength λa, wherein λop<λfc<λa, and wherein the optical loss of the fiber at λa is at least 1 dB/m greater than the loss at λop.
- 48. The fiber optic communication system of claim 47, wherein the optical loss at λop is less than 100 dB/km.
- 49. The fiber optic communication system of claim 47, wherein the optical loss at λop is less than 10 dB/km.
- 50. The fiber optic communication system of claim 47, wherein the optical loss at λop is less than 4 dB/km.
- 51. The fiber optic communication system of claim 47, wherein the optical loss of the fiber at λa is at least 1 dB/m greater than the loss at λop when the fiber is straight.
- 52. The fiber optic communication system of claim 47, wherein the optical loss of the fiber at all wavelengths greater than 1.05 λfc is at least 1 dB/m greater than the loss at λop.
- 53. The fiber optic communication system of claim 47, wherein the optical fiber further comprises a refractive index grating structure.
- 54. The fiber optic communication system of claim 53, wherein the refractive index grating structure is selected from the group consisting of Bragg gratings and long period gratings.
- 55. The fiber optic communication system of claim 54, wherein the Bragg grating is adapted to function as an external cavity reflector to stabilize the output of the light source at wavelength λop.
- 56. The fiber optic communication system of claim 47, wherein the source is a pump laser and the accepting device is selected from the group consisting of an erbium-doped fiber laser and an erbium-doped fiber amplifier.
- 57. The fiber optic communication system of claim 47, wherein the optical fiber comprises:
a core region with a diameter within the range of about 4.0 μm to about 10.0 μm; a depressed inner clad region with a diameter within the range of about 8.0 μm to about 50 μm; and an outer clad region; wherein the optical fiber has a raised refractive index within the range of about 0 to about 0.010 and a depressed refractive index within the range of about 0.002 to about 0.015.
- 58. The fiber optic communication system of claim 47, wherein the DIC to core diameter ratio is between about 2.0 and 7.0.
Parent Case Info
[0001] The present application claims priority to commonly-owned Provisional Application Serial No. 60,252,289, filed Nov. 21, 2000 of which is hereby incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60252289 |
Nov 2000 |
US |