Claims
- 1. A multi-stage Raman amplifier, comprising:
a first Raman amplifier stage having a first sloped gain profile operable to amplify a plurality of signal wavelengths; a second Raman amplifier stage having a second sloped gain profile operable to amplify at least most of the plurality of signal wavelengths after those wavelengths have been amplified by the first stage, the second sloped gain profile having an approximately complementary slope to the slope of the first sloped gain profile; wherein the combined effect of the first and second Raman stages contributes to an approximately flat overall gain profile over the plurality of signal wavelengths.
- 2. The amplifier of claim 1, wherein the first and second Raman stages operate to amplify all of the same signal wavelengths.
- 3. The amplifier of claim 1, wherein the slope of the first gain profile has an approximately equal and opposite slope from the slope of the second gain profile.
- 4. The amplifier of claim 1, wherein:
the first sloped gain profile comprises a gain profile wherein a majority of shorter signal wavelengths are amplified more than a majority of longer signal wavelengths; and the second sloped gain profile comprises a gain profile wherein a majority of the longer signal wavelengths are amplified more than a majority of the shorter signal wavelengths.
- 5. The amplifier of claim 4, wherein a phonon stimulated noise figure of the amplifier comprises less than four decibels.
- 6. The amplifier of claim 4, wherein a small signal noise figure of the amplifier comprises less than eight decibels.
- 7. The amplifier of claim 4, wherein a small signal noise figure of the amplifier comprises less than seven decibels.
- 8. The amplifier of claim 4, further comprising a third Raman amplifier stage having a third sloped gain profile comprising a gain profile wherein a majority of shorter signal wavelengths are amplified more than a majority of longer signal wavelengths, the third Raman stage operable to amplify approximately the same plurality of signal wavelengths after those wavelengths have been amplified by the second Raman stage.
- 9. The amplifier of claim 8, wherein the slope of the second gain profile is opposite from and steeper than the slope of the first or the third gain profiles.
- 10. The amplifier of claim 8, wherein the combined effect of the first, second, and third, Raman stages contributes to an approximately flat overall gain profile over the plurality of signal wavelengths.
- 11. The amplifier of claim 4, further comprising:
a third Raman amplifier stage having a third sloped gain profile wherein a majority of longer signal wavelengths are amplified more than a majority of shorter signal wavelengths, the third Raman stage operable to amplify approximately the same plurality of signal wavelengths after those wavelengths are amplified by the second Raman stage; and a fourth Raman amplifier stage having a fourth sloped gain profile wherein a majority of shorter signal wavelengths are amplified more than a majority of shorter signal wavelengths; the fourth Raman stage operable to amplify approximately the same plurality of signal wavelengths after those wavelengths are amplified by the third Raman stage.
- 12. The amplifier of claim 11, further comprising a lossy element coupled between the second and third Raman stages and operable to provide mid-stage access to the amplifier.
- 13. The amplifier of claim 12, wherein the lossy element is selected from a group consisting of an optical add/drop multiplexer, a gain equalizer, or an optical isolator.
- 14. The amplifier of claim 12, wherein the combined effect of the first and second, third, and fourth Raman stages contributes to an approximately flat overall gain profile over the plurality of signal wavelengths.
- 15. The amplifier of claim 12, wherein:
the combined effect of the first and second Raman stages contributes to an approximately flat overall gain profile over the plurality of signal wavelengths output from the second stage; and wherein the combined effect of the third and fourth Raman stages contributes to an approximately flat overall gain profile over the plurality of signal wavelengths output from the fourth stage.
- 16. The amplifier of claim 1, wherein:
the first sloped gain profile comprises a gain profile wherein a majority of longer signal wavelengths are amplified more than a majority of shorter signal wavelengths; and the second sloped gain profile comprises a gain profile wherein a majority of the shorter signal wavelengths are amplified more than a majority of the longer signal wavelengths.
- 17. The amplifier of claim 16, wherein the first Raman stage is coupled to the second Raman stage so as to allow longer pump wavelengths in the first Raman stage to accept power from shorter pump wavelengths in the second Raman stage.
- 18. The amplifier of claim 1, wherein the amplifier comprises a discrete Raman amplifier.
- 19. The amplifier of claim 1, wherein the amplifier comprises a distributed Raman amplifier.
- 20. The amplifier of claim 1, wherein the amplifier comprises a hybrid Raman amplifier.
- 21. The amplifier of claim 1, wherein each of the Raman amplifier stages comprises a plurality of pump wavelength signals collectively operable to affect the slope and magnitude of the gain profile for that stage.
- 22. The amplifier of claim 21, wherein the longest pump wavelength signal comprises a wavelength at least ten nanometers shorter than the shortest wavelength of the plurality of signal wavelengths.
- 23. The amplifier of claim 21, wherein a majority of the gain applied to signal wavelengths within thirty nanometers of the longest pump wavelength signal is applied in the first Raman stage of the amplifier.
- 24. The amplifier of claim 21, wherein a majority of the gain applied to signal wavelengths within forty five nanometers of the longest pump wavelength signal is applied in the first Raman stage of the amplifier.
- 25. The amplifier of claim 21, wherein a majority of the gain supplied by the longest pump wavelength signal is applied in a last Raman stage of the amplifier.
- 26. The amplifier of claim 1, wherein the bandwidth of the plurality of signal wavelengths comprises more than eighty nanometers.
- 27. The amplifier of claim 1, wherein the bandwidth of the plurality of signal wavelengths comprises at least one hundred nanometers.
- 28. The amplifier of claim 1, wherein the overall gain profile of the amplifier prior to use of a gain flattening filter varies by less than five decibels within the bandwidth of the plurality of signal wavelengths.
- 29. The amplifier of claim 1, further comprising a gain flattening filter coupled to the amplifier, the gain flattening filter operable to further flatten the gain profile of the amplifier.
- 30. The amplifier of claim 1, further comprising a lossy element coupled between at least two of the Raman stages.
- 31. The amplifier of claim 1, wherein each stage of the amplifier comprises:
an input operable to receive an optical signal; an output operable to communicate an amplified version of the optical signal; a distributed gain medium for receiving the optical signal and amplifying the optical signal therein through nonlinear polarization; a pump operable to generate a pump wavelength; and a coupler operable to deliver the pump wavelength to the distributed gain medium.
- 32. The amplifier of claim 31, wherein the distributed gain medium comprises a transmission fiber.
- 33. The amplifier of claim 31, wherein the distributed gain medium comprises a Raman gain fiber.
- 34. The amplifier of claim 31, wherein the distributed gain medium comprises a dispersion compensating Raman gain fiber.
- 35. The amplifier of claim 31, wherein the pump comprises one or more laser diodes.
- 36. The amplifier of claim 31, wherein the coupler comprises a wavelength division demultiplexer.
- 37. The amplifier of claim 1, further comprising at least one additional amplification stage coupled between the first and second Raman amplification stages.
- 38. A method of amplifying an optical signal having multiple wavelengths, the method comprising:
amplifying a plurality of signal wavelengths at a first Raman amplifier stage having a first sloped gain profile; amplifying at least most of the plurality of signal wavelengths at a second Raman amplifier stage after those signal wavelengths have been amplified by the first stage, the second stage having a second sloped gain profile comprising an approximately complimentary gain profile to the first gain profile; wherein the combined effect of the first and second Raman stages contributes to an approximately flat overall gain profile over the plurality of signal wavelengths.
- 39. The method of claim 38, wherein the first and second Raman stages operate to amplify all of the same signal wavelengths.
- 40. The method of claim 38, wherein the slope of the first gain profile has an approximately equal and opposite slope from the slope of the second gain profile.
- 41. The method of claim 38, wherein:
the first sloped gain profile comprises a gain profile wherein a majority of shorter signal wavelengths are amplified more than a majority of longer signal wavelengths; and the second sloped gain profile comprises a gain profile wherein a majority of the longer signal wavelengths are amplified more than a majority of the shorter signal wavelengths.
- 42. The method of claim 41, wherein a small signal noise figure of the amplifier comprises less than eight decibels.
- 43. The method of claim 41, further comprising amplifying at least most of the plurality of signal wavelengths at a third Raman amplifier stage after those signal wavelengths have been amplified by the second stage, the third stage having a third sloped gain profile comprising an approximately complimentary gain profile to the second gain profile
- 44. The method of claim 43, wherein the first sloped gain profile and the third gain profile comprise different slopes.
- 45. The method of claim 41, further comprising:
amplifying at least most of the plurality of signal wavelengths at a third Raman amplifier stage after those signal wavelengths have been amplified by the second stage, the third stage having a third sloped gain profile wherein a majority of longer signal wavelengths are amplified more than a majority of shorter signal wavelengths; and amplifying at least most of the plurality of signal wavelengths at a fourth Raman amplifier stage after those signal wavelengths have been amplified by the third stage, the fourth stage having a fourth sloped gain profile wherein a majority of shorter signal wavelengths are amplified more than a majority of shorter signal wavelengths.
- 46. The method of claim 38, wherein:
the first sloped gain profile comprises a gain profile wherein a majority of longer signal wavelengths are amplified more than a majority of shorter signal wavelengths; and the second sloped gain profile comprises a gain profile wherein a majority of the shorter signal wavelengths are amplified more than a majority of the longer signal wavelengths.
- 47. The method of claim 46, wherein the first Raman stage is coupled to the second Raman stage so as to allow longer pump wavelengths in the first Raman stage to accept power from shorter pump wavelengths in the second Raman stage.
- 48. The method of claim 38, wherein each of the Raman amplifier stages comprises a plurality of pump wavelength signals collectively operable to affect the slope and magnitude of the gain profile for that stage.
- 49. The method of claim 48, wherein the longest pump wavelength signal comprises a wavelength at least ten nanometers shorter than the shortest wavelength of the plurality of signal wavelengths.
- 50. The method of claim 48, wherein a majority of the gain supplied by the longest pump wavelength signal is applied in a last Raman stage of the amplifier.
- 51. The method of claim 38, wherein the bandwidth of the plurality of signal wavelengths comprises more than eighty nanometers.
- 52. The method of claim 38, wherein the overall gain profile of the amplifier prior to use of a gain flattening filter varies by less than five decibels within the bandwidth of the plurality of signal wavelengths.
- 53. The method of claim 38, further comprising amplifying the plurality of wavelengths between the first and second Raman amplification stages.
- 54. A multi-stage Raman amplifier, comprising:
a plurality of cascaded Raman amplifier stages each having a gain profile, wherein the gain profile of at least some of the Raman stages is sloped; wherein at least two of the sloped gain profiles comprise approximately complimentary gain profiles, and wherein the combined effect of the gain profiles of the Raman stages contributes to an approximately flat overall gain profile over a plurality of signal wavelengths amplified by the amplifier.
- 55. The amplifier of claim 54, wherein the first and second Raman stages operate to amplify all of the same signal wavelengths.
- 56. The amplifier of claim 54, wherein the slope of the first gain profile has an approximately equal and opposite slope from the slope of the second gain profile.
- 57. The amplifier of claim 54, wherein:
the first sloped gain profile comprises a gain profile wherein a majority of shorter signal wavelengths are amplified more than a majority of longer signal wavelengths; and the second sloped gain profile comprises a gain profile wherein a majority of the longer signal wavelengths are amplified more than a majority of the shorter signal wavelengths.
- 58. The amplifier of claim 57, further comprising a third Raman amplifier stage having a third sloped gain profile comprising a gain profile wherein a majority of shorter signal wavelengths are amplified more than a majority of longer signal wavelengths, the third Raman stage operable to amplify approximately the same plurality of signal wavelengths after those wavelengths have been amplified by the second Raman stage.
- 59. The amplifier of claim 58, wherein the combined effect of the first, second, and third, Raman stages contributes to an approximately flat overall gain profile over the plurality of signal wavelengths.
- 60. The amplifier of claim 57, further comprising:
a third Raman amplifier stage having a third sloped gain profile wherein a majority of longer signal wavelengths are amplified more than a majority of shorter signal wavelengths, the third Raman stage operable to amplify approximately the same plurality of signal wavelengths after those wavelengths are amplified by the second Raman stage; and a fourth Raman amplifier stage having a fourth sloped gain profile wherein a majority of shorter signal wavelengths are amplified more than a majority of shorter signal wavelengths; the fourth Raman stage operable to amplify approximately the same plurality of signal wavelengths after those wavelengths are amplified by the third Raman stage.
- 61. The amplifier of claim 60, wherein the combined effect of the first and second, third, and fourth Raman stages contributes to an approximately flat overall gain profile over the plurality of signal wavelengths.
- 62. The amplifier of claim 60, wherein:
the combined effect of the first and second Raman stages contributes to an approximately flat overall gain profile over the plurality of signal wavelengths output from the second stage; and wherein the combined effect of the third and fourth Raman stages contributes to an approximately flat overall gain profile over the plurality of signal wavelengths output from the fourth stage.
- 63. The amplifier of claim 54, wherein:
the first sloped gain profile comprises a gain profile wherein a majority of longer signal wavelengths are amplified more than a majority of shorter signal wavelengths; and the second sloped gain profile comprises a gain profile wherein a majority of the shorter signal wavelengths are amplified more than a majority of the longer signal wavelengths.
- 64. The amplifier of claim 63, wherein the first Raman stage is coupled to the second Raman stage so as to allow longer pump wavelengths in the first Raman stage to accept power from shorter pump wavelengths in the second Raman stage.
- 65. The amplifier of claim 54, wherein each of the Raman amplifier stages comprises a plurality of pump wavelength signals collectively operable to affect the slope and magnitude of the gain profile for that stage.
- 66. The amplifier of claim 65, wherein the longest pump wavelength signal comprises a wavelength at least ten nanometers shorter than the shortest wavelength of the plurality of signal wavelengths.
- 67. The amplifier of claim 65, wherein a majority of the gain supplied by the longest pump wavelength signal is applied in a last Raman stage of the amplifier.
- 68. The amplifier of claim 54, wherein the bandwidth of the plurality of signal wavelengths comprises more than eighty nanometers.
- 69. The amplifier of claim 54, wherein the overall gain profile of the amplifier prior to use of a gain flattening filter varies by less than five decibels within the bandwidth of the plurality of signal wavelengths.
- 70. The amplifier of claim 54, further comprising at least one additional amplification stage coupled between the first and second stages.
- 71. A method of amplifying multiple-wavelength optical signals, comprising:
applying a first sloped gain profile to a plurality of signal wavelengths at a first stage of a Raman amplifier; applying a second sloped gain profile to at least most of the plurality of signal wavelengths at a second stage of the Raman amplifier, the second gain profile comprising an approximately complementary gain profile of the first sloped gain profile; wherein the combined effect of the first and second sloped gain profiles contributes to an approximately flat overall gain profile over the plurality of signal wavelengths.
- 72. A multi-stage Raman amplifier, comprising:
a plurality of cascaded Raman amplifier stages each operable to amplify a plurality of signal wavelengths and each having a gain profile determined at least in part by one or more pump wavelength signals applied to the amplifier stage; wherein the plurality of amplifier stages comprise a first Raman stage operable to apply a higher gain level to a signal wavelength closest to a longest pump wavelength than a gain applied to a signal wavelength furthest from the longest pump wavelength.
- 73. The amplifier of claim 72, wherein the highest level of gain supplied by the longest pump wavelength signal is supplied in a last Raman stage of the amplifier.
- 74. A method of amplifying an optical signal having multiple wavelengths, the method comprising:
receiving a plurality of signal wavelengths at a plurality of cascaded Raman amplifier stages having at least a first stage and a last stage, each stage operable to amplify a plurality of signal wavelengths and each stage having a gain profile determined at least in part by one or more pump wavelength signals applied to the amplifier stage; applying a highest level of gain supplied by the longest pump wavelength in the last Raman stage of the amplifier.
- 75. A multi-stage Raman amplifier, comprising:
a plurality of cascaded Raman amplifier stages, at least some of the Raman stages having sloped gain profiles operable to contribute to a combined gain profile of the amplifier; wherein the combined gain profile of the amplifier is approximately flat across a bandwidth of at least eighty nanometers and comprises a small signal noise figure no greater than eight decibels.
- 76. The amplifier of claim 75, wherein the first and second Raman stages operate to amplify all of the same signal wavelengths.
- 77. The amplifier of claim 75, wherein the slope of the first gain profile has an approximately equal and opposite slope from the slope of the second gain profile.
- 78. The amplifier of claim 75, wherein:
the first sloped gain profile comprises a gain profile wherein a majority of shorter signal wavelengths are amplified more than a majority of longer signal wavelengths; and the second sloped gain profile comprises a gain profile wherein a majority of the longer signal wavelengths are amplified more than a majority of the shorter signal wavelengths.
- 79. The amplifier of claim 75, wherein:
the first sloped gain profile comprises a gain profile wherein a majority of longer signal wavelengths are amplified more than a majority of shorter signal wavelengths; and the second sloped gain profile comprises a gain profile wherein a majority of the shorter signal wavelengths are amplified more than a majority of the longer signal wavelengths.
- 80. The amplifier of claim 79, wherein the first Raman stage is coupled to the second Raman stage so as to allow longer pump wavelengths in the first Raman stage to accept power from shorter pump wavelengths in the second Raman stage.
- 81. The amplifier of claim 75, wherein the bandwidth of the plurality of signal wavelengths comprises at least one hundred nanometers.
- 82. The amplifier of claim 75, wherein the overall gain profile of the amplifier prior to use of a gain flattening filter varies by less than five decibels within the bandwidth of the plurality of signal wavelengths.
- 83. The amplifier of claim 75, further comprising at least one additional amplification stage coupled between the first and second stages.
- 84. The amplifier of claim 75, wherein the small signal noise figure is no greater than seven decibels.
- 85. A method of amplifying an optical signal having multiple wavelengths, the method comprising:
amplifying a plurality of signal wavelengths at a first Raman amplifier stage having a first sloped gain profile; amplifying at least most of the plurality of signal wavelengths at a second Raman amplifier stage having a second sloped gain profile that is different than the first sloped gain profile; wherein the combined gain profile of the amplifier is approximately flat across a bandwidth of at least eighty nanometers and comprises a small signal noise figure no greater than eight decibels.
- 86. The method of claim 85, wherein the small signal noise figure is no greater than seven decibels.
- 87. An optical pre-amplifier operable to be coupled to an optical communication link carrying optical signals having a plurality of wavelengths, the preamplifier comprising:
a first Raman stage having a gain profile where a majority of shorter signal wavelengths are amplified more than a majority of longer signal wavelengths; and a second Raman stage operable to receive at least most of the signal wavelengths after they have been amplified by the first stage, the second stage having a gain profile where a majority of longer signal wavelengths are amplified more than a majority of shorter signal wavelengths; wherein the gain profiles of the first and second Raman stages are operable to combine to contribute to an approximately flat combined gain profile over the plurality of signal wavelengths.
- 88. The preamplifier of claim 87, wherein the small signal noise figure of the amplifier is less than eight decibels
- 89. The preamplifier of claim 87, wherein the bandwidth of the plurality of signal wavelengths comprises at least eighty nanometers.
- 90. The preamplifier of claim 87, wherein the overall gain profile of the amplifier prior to use of a gain flattening filter varies by less than five decibels within the bandwidth of the plurality of signal wavelengths.
- 91. The preamplifier of claim 87, further comprising at least one additional amplification stage coupled between the first and second stages.
- 92. An optical booster amplifier operable to be coupled to an optical communication link carrying optical signals having a plurality of wavelengths, the booster amplifier comprising:
a first Raman stage having a gain profile where a majority of longer signal wavelengths are amplified more than a majority of shorter signal wavelengths; and a second Raman stage operable to receive at least most of the signal wavelengths after they have been amplified by the first stage, the second stage having a gain profile where a majority of shorter signal wavelengths are amplified more than a majority of longer signal wavelengths; wherein the gain profiles of the first and second Raman stages are operable to combine to contribute to an approximately flat combined gain profile over the plurality of wavelengths.
- 93. The booster amplifier of claim 92, wherein the small signal noise figure of the amplifier is less than eight decibels
- 94. The booster amplifier of claim 87, wherein the bandwidth of the plurality of signal wavelengths comprises at least eighty nanometers.
- 95. The booster amplifier of claim 87, wherein the overall gain profile of the amplifier prior to use of a gain flattening filter varies by less than five decibels within the bandwidth of the plurality of signal wavelengths.
- 96. The booster amplifier of claim 87, further comprising at least one additional amplification stage coupled between the first and second stages.
- 97. The booster amplifier of claim 87, wherein the first Raman stage is coupled to the second Raman stage so as to allow longer pump wavelengths in the first Raman stage to accept power from shorter pump wavelengths in the second Raman stage.
- 98. The booster amplifier of claim 87, wherein the booster amplifier implements no more than eight pump wavelengths per stage.
- 99. A Raman amplifier assembly comprising:
a preamplifier coupled to an optical communication link and comprising:
a first Raman stage having a gain profile wherein a majority of shorter wavelengths are amplified more than a majority of longer wavelengths; and a second Raman stage having a gain profile approximately complementary to the first gain stage; and a booster amplifier coupled to the optical communication link and comprising:
a first Raman stage having a gain profile wherein a majority of longer wavelengths are amplified more than a majority of shorter wavelengths; and a second Raman stage having a gain profile approximately complementary to the first gain stage.
- 100. An optical communication system operable to facilitate communication of multiple signal wavelengths, the system comprising:
a transmitter bank operable to generate a plurality of signal wavelengths; a multiplexer operable to combine the plurality of signal wavelengths into a single multiple wavelength signal for transmission over a transmission medium; an amplifier coupled to the transmission medium and operable to amplify the multiple wavelength signal prior to, during, or after the multiple wavelength signal's transmission over the transmission medium, the amplifier comprising a multi-stage Raman amplifier, comprising:
a first Raman amplifier stage having a first sloped gain profile operable to amplify a plurality of signal wavelengths; and a second Raman amplifier stage having a second sloped gain profile operable to amplify at least most of the plurality of signal wavelengths after those wavelengths have been amplified by the first stage, the second sloped gain profile having an approximately complementary slope to the slope of the first sloped gain profile; wherein the combined effect of the first and second Raman stages contributes to an approximately flat overall gain profile over the plurality of signal wavelengths; a demultiplexer operable to receive the multiple wavelength signal and to separate the signal wavelengths from the multiple wavelength signal; and a receiver bank operable to receive the plurality of signal wavelengths.
STATEMENT OF OTHER APPLICATIONS
[0001] This application discloses subject matter that is in some respects similar to that disclosed in copending application Ser. No. ______, entitled Method and System for Reducing Degradation of Optical Signal to Noise Ratio, filed Mar. 16, 2001.
[0002] This application also discloses subject matter that is in some respects similar to that disclosed in copending application Ser. No. 09/768,367, entitled All Band Amplifier, filed Jan. 22, 2001. Application Ser. No. 09/768,367 is a continuation-in-part of U.S. application Ser. No. 09/719,591, filed Dec. 12, 2000, which claims the benefit of copending application Ser. No. PCT/US99/13551, entitled Dispersion Compensating and Amplifying Optical Element, Method for Minimizing Gain Tilt and Apparatus for Minimizing Non-Linear Interaction Between Band Pumps, filed on Jun. 16, 1999, and published on Dec. 23, 1999 as WO 99/66607, which in turn claims the benefit of U.S. application Ser. No. 60/089,426.
[0003] These applications have been commonly assigned to Xtera Communications, Inc.