Claims
- 1. A Raman amplifier apparatus, comprising:
an optical transmission line including an input to receive an optical signal, an output that passes the optical signal, a first Raman gain fiber and a second Raman gain fiber; a first WDM positioned between the second Raman gain fiber and the output, with a first set of pump wavelengths input to the first WDM; and a second WDM positioned between the first and second Raman gain fibers, with a second set of pump wavelengths input to the second WDM, wherein at least a portion of the first set of pump wavelengths are different than the second set of pump wavelengths, and the first and second sets of pump wavelengths propagate in a same direction.
- 2. The apparatus of claim 1, wherein a majority of the first set of pump wavelengths have different wavelengths than the second set of pump wavelengths.
- 3. The apparatus of claim 1, wherein all of the first set of pump wavelengths have different wavelengths than the second set of pump wavelengths.
- 4. The apparatus of claim 1, wherein at least a portion of the first set of pump wavelengths have shorter wavelengths than the second set of pump wavelengths.
- 5. The apparatus of claim 1, wherein a length of at least one of the first and the second Raman gain fibers is less than 20 km.
- 6. The apparatus of claim 1, wherein the apparatus is configured to be coupled to at least a first pair of pump sources that are separated by no more than 50 nm in wavelength.
- 7. The apparatus of claim 1, wherein the apparatus is configured to be coupled to at least a first pair of pump sources that are separated by no more than 3 5 nm in wavelength.
- 8. The apparatus of claim 1, wherein a majority of gain from the pump wavelengths is provided to signal wavelengths input to the apparatus.
- 9. The apparatus of claim 1, wherein the optical signal propagates in a upstream direction from the input to the output, and the first and second sets of pump wavelengths propagate in a downstream direction towards the input in the optical transmission line.
- 10. The apparatus of claim 1, wherein the second WDM is configured to substantially pass the optical signal and at least a portion of the first set of pump wavelengths.
- 11. The apparatus of claim 1, wherein the first WDM is configured to substantially pass the optical signal.
- 12. The apparatus of claim 1 wherein the second set of pump wavelengths provides gain to a majority of wavelengths of the optical signal and extracts optical energy from at least a portion of the first set of pump wavelengths.
- 13. The apparatus of claim 1, wherein the optical signal includes a band of wavelengths.
- 14. The apparatus of claim 13, wherein the band of wavelengths includes a continuous range of wavelengths.
- 15. The apparatus of claim 13, wherein the band of wavelengths includes a plurality of ranges of wavelengths.
- 16. The apparatus of claim 1, wherein a majority of the shorter signal wavelengths receive more gain in the second Raman gain fiber than in the first Raman gain fiber.
- 17. The apparatus of claim 1, wherein a majority of the pump wavelengths have powers within 50% of each other.
- 18. The apparatus of claim 1, wherein a majority of the pump wavelengths have powers within 30% of each other.
- 19. The apparatus of claim 1, wherein a length of each Raman gain fiber is at least 200m.
- 20. The apparatus of claim 1, wherein a length of each Raman gain fiber is at least 1 kilometer.
- 21. The apparatus of claim 1, wherein the first Raman gain fiber is coupled to a second pump source providing the second set of pump wavelengths, and the second Raman gain fiber is coupled to a first pump source providing the first set of pump wavelengths, the first Raman gain fiber and the second pump source defining a first section, and the second Raman gain fiber and the first pump source defining a second section.
- 22. The apparatus of claim 21, further comprising:
at least a third section including a third Raman gain fiber coupled to a third pump source.
- 23. The apparatus of claim 1, wherein a length of each Raman gain fiber is controllable to adjust gain flatness of the Raman amplifier apparatus gain as a function of wavelengths of the optical signal.
- 24. The apparatus of claim 1, wherein a gain flatness of the Raman amplifier apparatus is optimized by a gain flattening filter.
- 25. The apparatus of claim 1, wherein a gain flatness of the Raman amplifier apparatus is optimized by pump wavelengths, pump powers and a number of pumps.
- 26. The apparatus of claim 1, wherein the first and second sets of pump wavelengths collectively produce a wavelength range λp.
- 27. The apparatus of claim 26, wherein the wavelength range λp is 1250 nm to 1550 nm.
- 28. The apparatus of claim 26, wherein the wavelength range λp is 1300 nm to 1530 nm.
- 29. The apparatus of claim 1, wherein the optical signal has a wavelength range λS of 1400 to 1650 nm.
- 30. The apparatus of claim 1, wherein the optical signal has a wavelength range λS of 1430 to 1630 nm.
- 31. The apparatus of claim 1, further comprising:
a first lossy member positioned between the first and second Raman gain fibers.
- 32. The apparatus of claim 31, wherein the first lossy member is an add/drop multiplexer.
- 33. The apparatus of claim 31, wherein the first lossy member is a gain equalization element.
- 34. The apparatus of claim 31, wherein the first lossy member is a dispersion compensating element.
- 35. The apparatus of claim 1, wherein at least a portion of one of the first and second Raman gain fibers is a dispersion compensating fiber.
- 36. The apparatus of claim 1, wherein at least a portion of both the first and second Raman gain fibers is a dispersion compensating fiber.
- 37. The apparatus of claim 21, wherein each of the first and second pump sources includes at least one laser diode pump source.
- 38. An optical amplifier, comprising:
an optical fiber including a signal input port, an optical signal output port, at least a first Raman gain fiber and a second Raman gain fiber, the optical fiber configured to be coupled to at least one optical signal source that produces an optical signal; a first WDM positioned between the second Raman gain fiber and the output port, the first WDM configured to be coupled to a first pump source that produces a first set of pump wavelengths; and a second WDM positioned between the first and second Raman gain fibers, the second WDM configured to be coupled to a second pump source that produces a second set of pump wavelengths, wherein at least a portion of the first set of pump wavelengths is different than the second set of pump wavelengths, the optical signal travels in a first direction, and the first and second sets of pump wavelengths travel in a reverse direction relative to the first direction.
- 39. The apparatus of claim 38, wherein a majority of the first set of pump wavelengths have different wavelengths than the second set of pump wavelengths.
- 40. The apparatus of claim 38, wherein all of the first set of pump wavelengths have different wavelengths than the second set of pump wavelengths.
- 41. The apparatus of claim 38, wherein at least a portion of the first set of pump wavelengths have shorter wavelengths than the second set of pump wavelengths.
- 42. The apparatus of claim 38, wherein a length of at least one of the first and the second Raman gain fibers is less than 20 km.
- 43. The apparatus of claim 38, wherein a wavelength gap between the first and second sets of pump wavelengths is no more than 50 nm.
- 44. The apparatus of claim 38, wherein a wavelength gap between the first and second sets of pump wavelengths is no more than 35 nm.
- 45. The apparatus of claim 38, wherein the majority of gain from the pump wavelengths is provided to signal wavelengths input to the apparatus.
- 46. The apparatus of claim 38, wherein the second WDM is configured to substantially pass the optical signal and at least a portion of the first set of pump wavelengths.
- 47. The apparatus of claim 38, wherein the first WDM is configured to substantially pass the optical signal.
- 48. The apparatus of claim 38, wherein the second set of pump wavelengths provides gain to a majority of wavelengths of the optical signal and extracts optical energy from at least a portion of the first set of pump wavelengths.
- 49. The apparatus of claim 38, wherein the optical signal includes a band of wavelengths.
- 50. The apparatus of claim 49, wherein the band of wavelengths includes a continuous range of wavelengths.
- 51. The apparatus of claim 49, wherein the band of wavelengths includes a plurality of ranges of wavelengths.
- 52. The apparatus of claim 38, wherein a majority of the shorter signal wavelengths receive more gain in the second Raman gain fiber than in the first Raman gain fiber.
- 53. The apparatus of claim 38, wherein a majority of the pump wavelengths have powers within 50% of each other.
- 54. The apparatus of claim 38, wherein a majority of the pump wavelengths have powers within 30% of each other.
- 55. The apparatus of claim 38, wherein a length of each Raman gain fiber is at least 200m.
- 56. The apparatus of claim 38, wherein a length of each Raman gain fiber is at least 1 kilometer.
- 57. The apparatus of claim 38, further comprising:
the first pump source and the second pump source, wherein the first Raman gain fiber and the second pump source define a first section, and the second Raman gain fiber and the first pump source define a second section.
- 58. The apparatus of claim 57, further comprising:
at least a third section including a third Raman gain fiber coupled to a third pump source.
- 59. The apparatus of claim 38, wherein a length of each Raman gain fiber is controllable to adjust a gain flatness of the optical amplifier as a function of wavelengths of the optical signal.
- 60. The apparatus of claim 38, wherein a gain flatness of the optical amplifier is optimized by pump wavelengths, pump powers and a number of pumps.
- 61. The apparatus of claim 38, wherein a gain flatness of the optical amplifier is optimized by a gain flattening filter.
- 62. The apparatus of claim 38, wherein the first and second sets of pump wavelengths collectively produce a wavelength range λp.
- 63. The apparatus of claim 62, wherein the wavelength range λp is 1250 nm to 1550 mn.
- 64. The apparatus of claim 62, wherein the wavelength range λp is 1300 nm to 1530 nm.
- 65. The apparatus of claim 38, wherein the optical signal has a wavelength range λS of 1400 to 1650 nm.
- 66. The apparatus of claim 38, wherein the optical signal has a wavelength range λS of 1430 to 1630 nm.
- 67. The apparatus of claim 38, further comprising:
a first lossy member positioned between the first and second Raman gain fibers.
- 68. The apparatus of claim 67, wherein the first lossy member is an add/drop multiplexer.
- 69. The apparatus of claim 67, wherein the first lossy member is a gain equalization element.
- 70. The apparatus of claim 67, wherein the first lossy member is a dispersion compensating element.
- 71. The apparatus of claim 38, wherein at least a portion of one of the first and second Raman gain fibers is a dispersion compensating fiber.
- 72. The apparatus of claim 38, wherein at least a portion of both the first and second Raman gain fibers is a dispersion compensating fiber.
- 73. The apparatus of claim 38, wherein each of the first and second pump sources includes at least one laser diode pump source.
- 74. An amplifier apparatus, comprising:
an optical transmission line including an input to receive an optical signal, an output that passes the optical signal, a first gain fiber and a second gain fiber; a first WDM positioned between the second gain fiber and the output, with a first set of pump wavelengths input to the first WDM; and a second WDM positioned between the first and second gain fibers, with a second set of pump wavelengths input to the second WDM, at least a portion of the first set of pump wavelengths being different than the second set of pump wavelengths, and the first and second sets of pump wavelengths propagate in a same direction, wherein the second WDM is configured to substantially pass the optical signal and at least a portion of the first set of pump wavelengths.
- 75. The apparatus of claim 74, wherein a majority of the first set of pump wavelengths have different wavelengths than the second set of pump wavelengths.
- 76. The apparatus of claim 74, wherein all of the first set of pump wavelengths have different wavelengths than the second set of pump wavelengths.
- 77. The apparatus of claim 74, wherein at least a portion of the first set of pump wavelengths have shorter wavelengths than the second set of pump wavelengths.
- 78. The apparatus of claim 74, wherein at least one of the gain fibers includes at least one dopant that improves amplification in the gain fiber.
- 79. The apparatus of claim 74, wherein the majority of gain from the pump wavelengths is provided to signal wavelengths input to the apparatus.
- 80. The apparatus of claim 74, wherein the optical signal propagates in an upstream direction from the input to the output, and the first and second sets of pump wavelengths propagate in a downstream direction towards the input in the optical transmission line.
- 81. The apparatus of claim 74, wherein the first WDM is configured to substantially pass the optical signal.
- 82. The apparatus of claim 74, wherein the second set of pump wavelengths provides gain to a majority of wavelengths of the optical signal and extracts optical energy from at least a portion of the first set of pump wavelengths.
- 83. The apparatus of claim 74, wherein the optical signal includes a band of wavelengths.
- 84. The apparatus of claim 83, wherein the band of wavelengths includes a continuous range of wavelengths.
- 85. The apparatus of claim 83, wherein the band of wavelengths includes a plurality of ranges of wavelengths.
- 86. The apparatus of claim 74, wherein a majority of the shorter signal wavelengths receive more gain in the second gain fiber than in the first gain fiber.
- 87. The apparatus of claim 74, wherein a majority of the pump wavelengths have powers within 50% of each other.
- 88. The apparatus of claim 74, wherein a majority of the pump wavelengths have powers within 30% of each other.
- 89. The apparatus of claim 74, wherein the first gain fiber is coupled to a second pump source providing the second set of pump wavelengths, and the second gain fiber is coupled to a first pump source providing the first set of pump wavelengths, the first gain fiber and the second pump source defining a first section, and the second gain fiber and the first pump source defining a second section.
- 90. The apparatus of claim 89, further comprising:
at least a third section including a third gain fiber coupled to a third pump source.
- 91. The apparatus of claim 74, wherein a length of each gain fiber is controllable to adjust a gain flatness of the amplifier apparatus as a function of wavelengths of the optical signal.
- 92. The apparatus of claim 74, wherein a gain flatness of the amplifier apparatus is optimized by a gain flattening filter.
- 93. The apparatus of claim 74, wherein a gain flatness of the amplifier apparatus is optimized by pump wavelengths, pump powers and a number of pumps.
- 94. The apparatus of claim 74, wherein the first and second sets of pump wavelengths collectively produce a wavelength range λp.
- 95. The apparatus of claim 94, wherein the wavelength range λp is 1250 nm to 550 nm.
- 96. The apparatus of claim 94, wherein the wavelength range λp is 1300 nm to 1530 nm.
- 97. The apparatus of claim 74, wherein the optical signal has a wavelength range λS of 1400 to 1650 nm.
- 98. The apparatus of claim 74, wherein the optical signal has a wavelength range λS of 1430 to 1630 nm.
- 99. The apparatus of claim 74, further comprising:
a first lossy member positioned between the first and second gain fibers.
- 100. The apparatus of claim 99, wherein the first lossy member is an add/drop multiplexer.
- 101. The apparatus of claim 99, wherein the first lossy member is a gain equalization element.
- 102. The apparatus of claim 99, wherein the first lossy member is a dispersion compensating element.
- 103. The apparatus of claim 74, where in at least a portion of one of the first and second gain fibers is a dispersion compensating fiber.
- 104. The apparatus of claim 74, wherein at least a portion of both the first and second gain fibers is a dispersion compensating fiber.
- 105. The apparatus of claim 89, wherein each of the first and second pump sources includes at least one laser diode pump source.
- 106. A method of amplification, comprising:
providing a Raman amplifier apparatus including an optical transmission line with an input to receive an optical signal, an output that passes the optical signal, a first Raman gain fiber and a second Raman gain fiber; introducing into the input a signal with multiple wavelengths; amplifying the signal in the Raman amplifier apparatus, wherein a majority of longer wavelengths of the signal are amplified before shorter wavelengths of the signal are amplified; and producing an amplifier output.
- 107. The method of claim 106, wherein the signal is amplified and dispersion compensated in the Raman amplifier apparatus.
- 108. The method of claim 106, wherein the method amplifies more than 35 nm of bandwidth.
- 109. The method of claim 106, wherein the method amplifies more than 50 nm of bandwidth.
- 110. The method of claim 106, wherein the signal propagates in an upstream direction from the input to the output of the Raman amplifier apparatus, and first and second sets of pump wavelengths propagate in a downstream direction.
- 111. The method of claim 110, wherein a first pump source provides the first set of pump wavelengths and a second pump source provides the second set of pump wavelengths.
- 112. The method of claim 106, wherein a gain flatness of the Raman amplifier apparatus is optimized by pump wavelengths, pump powers and a number of pumps.
- 113. The method of claim 106, wherein a gain flatness of the Raman amplifier apparatus is optimized by at least one of a length of the first Raman gain fiber and a length of the second Raman gain fiber.
- 114. The method of claim 106, wherein a gain flatness of the Raman amplifier apparatus is optimized by a gain flattening filter.
- 115. The method of claim 110, wherein the first and second sets of pump wavelengths collectively produce a wavelength range λp.
- 116. The method of claim 115, wherein the wavelength range λp of the first and second sets of pump wavelengths is 1250 nm to 1550 nm.
- 117. The method of claim 115, wherein the wavelength range λp of the first and second sets of pump wavelengths is 1300 nm to 1530 nm.
- 118. The method of claim 106, wherein the optical signal has a wavelength range λS of 1400 to 1650 nm.
- 119. The method of claim 106, wherein the optical signal has a wavelength range λS of 1430 to 1630 nm.
- 120. The method of claim 106, wherein the signal travels from the first Raman gain fiber to the second Raman gain fiber, and the majority of the longer wavelengths of the signal are amplified more in the first Raman gain fiber than in the second Raman gain fiber.
- 121. The method of claim 106, wherein the signal travels from the first Raman gain fiber to the second Raman gain fiber, and the majority of the shorter wavelengths of the signal are amplified more in the second Raman gain fiber than in the first Raman gain fiber.
- 122. A method of amplification, comprising:
providing an amplifier apparatus including a first pump source coupled to a first port of an optical transmission line, a second pump source coupled to a second port of the optical transmission line, an output that passes an optical signal, a first gain fiber and a second gain fiber; introducing signals to an input of the optical transmission line; pumping the first gain fiber with a second set of pump wavelengths and the second gain fiber with a first set of pump wavelengths, wherein at least a portion of the first set of pump wavelengths is different than the second set of pump wavelengths; amplifying at least an 80 nm bandwidth of signal, wherein a gain variation over the 80 nm is less than 5 dB; and producing an amplifier output.
- 123. The method of claim 122, wherein the gain variation over the 80 nm is less than 3 dB.
- 124. The method of claim 122, wherein the first and second sets of pump wavelengths travel in a same direction in the optical transmission line.
- 125. The method of claim 122, wherein a majority of longer wavelengths of the 80 nm bandwidth of signal are amplified before shorter wavelengths of the signal are amplified.
- 126. The method of claim 122, wherein the 80 nm bandwidth of signal propagates in an upstream direction from the input to the output of the amplifier apparatus, and the first and second sets of pump wavelengths propagate in a downstream direction.
- 127. The method of claim 122, wherein the 80 nm bandwidth of signal is within a wavelength range λS of 1400 to 1650 nm.
- 128. The method of claim 122, wherein the 80 nm bandwidth of signal is within a wavelength range λS of 1430 to 1630 nm.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of and claims the benefit of priority from U.S. application Ser. No. 09/719,591, filed Dec. 12, 2000, which claims the benefit of PCT Application US99/13551, filed Jun. 16, 1999, which claims the benefit of Ser. No. 60/089,426, filed Jun. 16, 1998, which applications are fully incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60089426 |
Jun 1998 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09719591 |
Dec 2000 |
US |
Child |
09768367 |
Jan 2001 |
US |