Claims
- 1. A dispersion compensating optical waveguide comprising: a plurality of core segments, the refractive index profile of which are selected to result in an optical waveguide capable of propagating a light signal in an LP02 mode a sufficient distance to compensate for dispersion of a transmission optical waveguide having a length greater than 25 km that propagates the signal in an LP01 mode.
- 2. The waveguide of claim 1 wherein the plurality of core segments further comprise:
(a) a first core segment having an outer radius in the range between about 3 μm and 9 μm and a Δ% peak in the range between about 1.0% and 2.5%, (b) a second core segment having an outer radius in the range between about 7 μm and 13 μm and a Δ% peak in the range between about 0.3% and −0.5%, and (c) a third core segment having an outer radius between about 10 μm and 25 μm and a Δ% peak in the range between about 0.2% and 1.0%.
- 3. The waveguide of claim 1 wherein the plurality of core segments further comprise:
(a) a first core segment having an outer radius in the range between about 3 μm and 9 μm and a Δ% peak in the range between about 1.0% and 2.5%, (b) a second core segment having a width in the range between about 2 μm and 8 μm and a Δ% peak in the range between about 0.2% and −0.5%, and (c) a third core segment having a width in the range between about 1 μm and 10 μm and a Δ% peak in the range between about 0.2% and 1.0%.
- 4. The waveguide of claim 1 wherein the plurality of core segments further comprise:
(a) a first core segment having an outer radius in the range between about 4 μm and 8 μm and a Δ% peak in the range between about 1.5% and 2.5%, (b) a second core segment having a width in the range between about 4 μm and 6 μm and a Δ% peak in the range between about 0.3% and 0.1%, and (c) a third core segment having a width in the range between about 4 μm and 8 μm and a Δ% peak in the range between about 0.3% and 0.7%.
- 5. The waveguide of claim 1 wherein said refractive index profile is selected to provide:
(a) an effective area greater than about 60 μm2 at 1550 nm in the LP02 mode, (b) a dispersion value at about 1550 nm in the LP02 mode between about −50 and −400 ps/nm/km, and (c) a dispersion slope value at about 1550 nm in the LP02 mode between about −0.01 and −20 ps/nm2/km.
- 6. The waveguide of claim 1 wherein the plurality of core segments further comprise:
(a) a first core segment having an outer radius in the range between about 3 μm and 8 μm and a Δ% peak of greater than 1.5%, (b) a second core segment having an outer radius in the range between about 8 μm and 12 μm and a Δ% peak in the range between about 0.3% and 0.1%, and (c) a third core segment having an outer radius between about 14 μm and 20 μm and a Δ% peak in the range between about 0.2% and 0.6%.
- 7. The waveguide of claim 1 wherein the plurality of core segments further comprise:
(a) a first core segment having an outer radius in the range between about 4 μm and 8 μm and a Δ% peak of greater than about 1.5%, and (b) a sub-segment within the first core segment having a inner radius of between about 3 μm and 6 μm and a Δ% peak in the range between about 0.6% and 1.4%.
- 8. The waveguide of claim 1 wherein the refractive index profile is selected to result in the waveguide exhibiting a kappa value between about 10 nm and about 500 nm, where kappa is the ratio of dispersion in the LP02 mode at 1550 nm divided by dispersion slope in the LP02 mode at 1550 nm.
- 9. The waveguide of claim 8 wherein the kappa value is in the range between about 30 nm and about 70 nm.
- 10. The waveguide of claim 1 wherein the refractive index profile is selected to result in the waveguide exhibiting an effective area greater than about 30 μm2 at about 1550 nm in the LP02 mode.
- 11. The waveguide of claim 10 wherein the refractive index profile is selected to result in the waveguide exhibiting an effective area greater than about 60 μm2.
- 12. The waveguide of claim 11 having a length between about 0.5 km and about 3 km and is capable of propagating a light signal in an LP02 mode along an entire length thereof to compensate for dispersion of a length of transmission fiber adapted to propagate the light signal in an LP01 mode.
- 13. The waveguide of claim 10 wherein the refractive index profile is selected to result in the waveguide exhibiting an effective area in the range between about 30 μm2 and 150 μm2.
- 14. The waveguide of claim 10 wherein the refractive index profile is selected to result in the waveguide exhibiting an effective area in the range between about 50 μm2 and 90 μm2.
- 15. The waveguide of claim 1 wherein the refractive index profile is selected to result in the waveguide exhibiting a dispersion value at about 1550 nm and in the LP02 mode between about −10 ps/nm/km and about −1000 ps/nm/km.
- 16. The waveguide of claim 15 wherein the refractive index profile is selected to result in the waveguide exhibiting a dispersion value at about 1550 nm and in the LP02 mode between about −50 ps/nm/km and about −400 ps/nm/km.
- 17. The waveguide of claim 1 wherein the refractive index profile is selected to result in the waveguide exhibiting a dispersion slope value at about 1550 nm and in the LP02 mode between about −0.01 ps/nm2/km and about −20 ps/nm2/km.
- 18. The waveguide of claim 17 wherein the refractive index profile is selected to result in the waveguide exhibiting a dispersion slope value at about 1550 nm and in the LP02 mode between about −1 ps/nm2/km and about −10 ps/nm2/km.
- 19. The waveguide of claim 1 wherein the refractive index profile is selected to result in the waveguide exhibiting:
(a) a dispersion value at about 1550 nm and in the LP02 mode between about −50 ps/nm/km and about −400 ps/nm/km. (b) a dispersion slope value at about 1550 nm and in the LP02 mode between about −1 ps/nm2/km and about −10 ps/nm2/km, and (c) an effective area in the range between about 50 μm2 and 90 μm2 at about 1550 nm in the LP02 mode.
- 20. The waveguide of claim 1 wherein the plurality of core segments comprises at least three core segments.
- 21. The waveguide of claim 1 wherein n1>n3>n2.
- 22. The waveguide of claim 1 wherein a first core segment of the plurality of core segments comprises a Δ% peak in the range between about 1.0% and 2.5%.
- 23. The waveguide of claim 1 wherein a first core segment of the plurality of core segments comprises a Δ% peak greater than about 1.5%.
- 24. The waveguide of claim 23 wherein the Δ% peak is greater than about 2.0%.
- 25. The waveguide of claim 1 wherein a second core segment of the plurality of core segments comprises a Δ% peak of greater than about 0.0%.
- 26. The waveguide of claim 1 wherein the Δ% peak of the second core segment is in the range between about 0.3% and about −0.1%.
- 27. The waveguide of claim 1 wherein a third core segment of the plurality of core segments comprises a Δ% peak in the range between about 0.2% and about 1.0%.
- 28. The waveguide of claim 27 wherein the Δ% peak of the third core segment is in the range between about 0.3% and about 0.6%.
- 29. The waveguide of claim 1 wherein a second core segment of the plurality of segments has a radius R3 between about 10 μm and about 20 μm.
- 30. The waveguide of claim 29 further comprising a radius R2 between about 7 μm and about 13 μm.
- 31. The waveguide of claim 1 further comprising a first core segment of the plurality of core segments including a Δ% of less than about 1.0 at a centerline of the dispersion compensating waveguide and a Δ% peak at a radius greater than 1 μm having a Δ% peak of greater than about 1.5%.
- 32. The waveguide of claim 1 wherein a first core segment of the plurality of core segments has a peak Δ% in the range of between about 1.0% and about 2.5% and is positioned at a radius dimension between about 1 μm and about 3 μm.
- 33. The waveguide of claim 1 wherein the dispersion compensating optical waveguide has a length between about 0.5 km and about 3 km.
- 34. The waveguide of claim 1 having a length between about 0.5 km and about 3.0 km.
- 35. A dispersion compensating optical waveguide comprising:
a plurality of core segments, the refractive index profile of which results in a waveguide capable of propagating a light signal in an LP02 mode at about 1550 nm by the dispersion compensation optical waveguide through a sufficient length, upon conversion to the LP02 mode, to compensate for dispersion of a transmission waveguide propagating in a LP01 mode at about 1550 nm, the transmission waveguide having a length greater than about 25 km, the dispersion compensating optical waveguide including;
(a) a first core segment having an outer radius in the range between about 4 μm and 8 μm and a Δ% peak of greater than 1.5%, (b) a second core segment having an outer radius in the range between about 8 μm and 12 μm and a Δ% peak greater than 0.0%, and (c) a third core segment having an outer radius between about 10 μm and 25 μm and a Δ% peak greater than about 0.2%.
- 36. A dispersion compensating waveguide comprising:
a plurality of core segments, the refractive index profile of which results in properties capable of propagating a light signal in an LP02 mode at about 1550 nm by the dispersion compensation waveguide through a sufficient length, upon conversion to the LP02 mode and at 1550 nm, to compensate for dispersion of a transmission waveguide propagating in a LP01 mode, the transmission waveguide having a length greater than 25 km, the dispersion compensating optical waveguide including;
(a) a first core segment having an outer radius in the range between about 4 μm and 8 μm and a Δ% peak in the range between about greater than 1.5%, (b) a sub-segment within the first core segment having a inner radius of between about 3 μm and 6 μm and a Δ% peak in the range between about 0.6% and about 1.4%, (c) a second core segment having an outer radius in the range between about 8 μm and 12 μm and a Δ% peak in the range between about 0.3% and about −0.5%, and (d) a third core segment having an outer radius between about 14 μm and 20 μm and a Δ% peak in the range between about 0.2% and about 0.8%.
- 37. A dispersion compensating waveguide comprising:
a plurality of core segments, the refractive index profile of which is selected to result in the dispersion compensating waveguide being capable of propagating a light signal in an LP02 mode at about 1550 nm a sufficient distance to compensate for dispersion of a transmission waveguide having a length greater than 25 km that propagates the light signal in an LP01 mode at about 1550 nm, the dispersion compensating waveguide having the following properties:
(a) a kappa value between about 30 nm to about 150 nm at about 1550 nm and in the LP02 mode; (b) an effective area between about 30 μm2 and about 150 μm2 at about 1550 nm and in the LP02 mode; and (c) a dispersion value of −50 to −400 ps/km/nm at about 1550 nm and in the LP02 mode.
- 38. A dispersion compensating module comprising:
a coupler adapted to couple with a first fiber designed to propagate light in a first mode, a reflective fiber grating operatively connected to the coupler, the fiber grating capable of converting the first mode into a second mode, and a second fiber operatively coupled through the coupler to the reflective fiber grating, the second fiber capable of propagating light in the second mode.
- 39. The module of claim 38 wherein the first fiber is a transmission fiber and the second fiber is a dispersion compensating fiber.
- 40. The module of claim 38 wherein the second fiber comprises:
a plurality of core segments, the refractive index profile of which results in a waveguide capable of propagating a light signal in an LP02 mode at about 1550 nm by the dispersion compensation waveguide through a sufficient length, upon conversion to the LP02 mode and at 1550 nm, to compensate for dispersion of a transmission waveguide propagating in a LP01 mode, the transmission waveguide having a length greater than 25 km, the dispersion compensating optical waveguide including;
(a) a first core segment having an outer radius in the range between about 4 μm and 8 μm and a Δ% peak in the range between about greater than 1.5%, (b) a sub-segment within the first core segment having an inner radius of between about 3 μm and 6 μm and a Δ% peak in the range between about 0.6% and about 1.4%, (c) a second core segment having an outer radius in the range between about 8 μm and 12 μm and a Δ% peak in the range between about 0.3% and about −0.5%, and (d) a third core segment having an outer radius between about 14 μm and 20 μm and a Δ% peak in the range between about 0.2% and about 0.8%.
- 41. The module of claim 38 wherein the first mode is an LP01 mode and the second mode is an LP02 mode.
- 42. The module of claim 38 wherein the coupler optically couples a pigtail to the reflective fiber grating and optically couples the reflective fiber grating to a fiber interconnect.
- 43. The module of claim 38 further comprising a fiber interconnect which optically couples the fiber grating to a dispersion compensating fiber.
- 44. The module of claim 43 wherein the dispersion compensating fiber includes a refractive index profile, a core portion of which substantially matches the shape of the refractive index profile of a core portion of the fiber interconnect.
- 45. The module of claim 38 further comprising a pass through fiber including the reflective fiber grating on one portion thereof and a fiber interconnect on another portion thereof.
- 46. The module of claim 45 wherein the pass through fiber includes a necked-down portion wherein a width dimension of a glass fiber portion of the pass through fiber is reduced as compared to an initial undeformed dimension thereof, the necked down portion being formed prior to fusion of the first and second fibers within the coupler.
- 47. The module of claim 46 wherein a transverse dimension of the necked-down portion is pre-selected such that a propagation constant of the first fiber substantially matches a propagation constant of the second fiber at an operating mode.
- 48. The module of claim 38 wherein the reflective fiber grating is included on a conversion fiber that includes boron doped silica.
- 49. The module of claim 48 further comprising germanium doped silica.
- 50. The module of claim 48 further comprising phosphorous doped silica.
- 51. The module of claim 38 wherein the reflective fiber grating is included on a conversion fiber having a first core segment including inner and outer sub-segments, the inner sub-segment having a first peak Δ% and includes germanium doped silica, the outer sub-segment having a lower Δ% than the inner sub-segment and includes phosphorous doped silica.
- 52. The module of claim 38 wherein the reflective fiber grating is included on a conversion fiber having a first core segment including inner and outer sub-segments, the inner sub-segment having a first peak Δ% and including boron and germanium doped silica, the outer sub-segment having a second peak Δ% lower than the first peak Δ% and wherein the outer sub-segment includes phosphorous doped silica.
- 53. A dispersion compensating module comprising:
(a) a mode converter operatively coupleable with a transmission waveguide, the transmission waveguide adapted to propagate light in a first mode, the mode converter including a reflective fiber grating capable of converting the first mode into a second mode, and (b) a dispersion compensating fiber operatively coupled to the mode converter, the dispersion compensating fiber adapted to propagate light in the second mode such that dispersion of the transmission fiber may be compensated for.
- 54. The module of claim 53 further comprising an optical fiber coupler adapted to couple light propagating in the first mode into the reflective fiber grating and further adapted to couple light propagating in the second mode into the dispersion compensating fiber.
- 55. The module of claim 53 wherein the first mode is a LP01 mode and the second mode is an LP02 mode.
- 56. A mode converter comprising:
(a) an optical fiber coupler adapted to operatively couple light propagating in a first mode in a first fiber into a second fiber, and (b) a reflective fiber grating operatively coupled to the second fiber, the grating being capable of converting light propagating in a first mode into a second mode wherein the second fiber extends from the optical fiber coupler and is adapted to propagate light in the second mode.
- 57. The converter of claim 56 wherein the first fiber is a fiber pigtail adapted to operatively couple to an optical transmission waveguide; the transmission waveguide propagating light in an LP01 mode.
- 58. The converter of claim 56 wherein the reflective fiber grating is adapted to convert the LP01 mode into an LP02 mode.
- 59. The converter of claim 56 wherein the second fiber is a fiber interconnect operatively coupled to the reflective fiber grating, the fiber interconnect being adapted to couple with a dispersion compensating fiber adapted to propagate light in the LP02 mode.
- 60. The mode converter of claim 56 wherein the coupler is adapted to operatively couple a pigtail with the reflective fiber grating and the fiber grating with a fiber interconnect.
- 61. The mode converter of claim 56 wherein the reflective fiber grating comprises a plurality of longitudinally spaced portions that have been exposed to UV radiation to change a refractive index of the portions.
- 62. The mode converter of claim 61 wherein the longitudinally spaced portions are spaced at intervals that vary by up to 3% from a beginning to an end of the reflective fiber grating.
- 63. The mode converter of claim 56 wherein a fiber having the reflective grating thereon includes:
a first core segment having an outer radius in the range between about 3 μm and about 7 μm and a Δ% peak greater than about 1.2%, and a outer sub-segment within the first core segment having an inner radius of between about 2 μm and about 5 μm and a Δ% peak in the range between about 0.4% and about 1.2%.
- 64. The module of claim 56 wherein the reflective fiber grating is included in a fiber that comprises boron doped silica in a first segment thereof.
- 65. The module of claim 64 further comprising germanium doped silica in a first segment thereof.
- 66. The module of claim 65 further comprising phosphorous doped silica.
- 67. The module of claim 56 wherein the reflective fiber grating is included in a fiber comprising germanium and boron doped silica in a first portion and phosphorous doped silica in a second portion thereof.
- 68. A optical fiber coupler comprising:
(a) a first optical fiber within the coupler having a first propagation constant in a first mode, and (b) a second optical fiber within the coupler, the second optical fiber having a second propagation constant in an undeformed portion thereof and in the first mode that is different than the first propagation constant, the second optical fiber including a necked-down portion formed on a glass portion thereof which is formed prior to fusion of the fibers, the necked-down portion having a dimension such that a propagation constant in the necked-down portion substantially matches the first propagation constant wherein coupling of light between the fibers in the first mode is enhanced.
- 69. The coupler of claim 68 further comprising a cane sleeve into which the fibers are inserted, the sleeve and fibers being fused together at a mid-region of the sleeve.
- 70. The coupler of claim 69 wherein the cane sleeve comprises boron doped silica.
- 71. The coupler of claim 70 wherein boron is included in an amount of up to 10% by weight of silica.
- 72. The coupler of claim 68 wherein the first optical fiber is a single mode fiber.
- 73. The coupler of claim 68 wherein the second optical fiber includes a reflective fiber grating.
- 74. The coupler of claim 68 wherein the second optical fiber is adapted to propagate a higher order optical mode.
- 75. The coupler of claim 74 wherein the higher order optical mode is an LP02 mode.
- 76. The coupler of claim 68 wherein the necked-down portion is about 30% to about 60% of an undeformed transverse dimension of the second optical fiber.
- 77. A optical fiber coupler, comprising:
(a) a cane sleeve having a length, a mid-region, opposed ends and an aperture therethrough, (b) a first fiber adapted for carrying a light in a first mode received within the aperture of the cane sleeve and extending out of at least one of the opposed ends, and (c) a second fiber passing through the sleeve and extending out of both ends, the second fiber adapted for propagating light in a second mode and including a necked-down portion formed on a glass portion of the second fiber prior to fusion of the fibers, the necked-down portion having a length less than the length of the sleeve and being positioned approximately at the mid-region, the first fiber, second fiber and sleeve being fused and stretched under heat along the mid-region such that upon light transmission through one of the fibers, a portion of light is coupled into the other fiber.
Parent Case Info
[0001] This application claims priority to and the benefit of U.S. Provisional Patent Application No. 60/180,824, filed Feb. 7, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60180824 |
Feb 2000 |
US |
Divisions (1)
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Number |
Date |
Country |
| Parent |
09620477 |
Jul 2000 |
US |
| Child |
10171316 |
Jun 2002 |
US |