Claims
- 1. An optical amplifier comprising at least one Raman amplification stage, the Raman amplification stage comprising:
one or more pump sources operable to generate a plurality of pump signals capable of being delivered to a gain medium carrying an optical signal; wherein at least one of the plurality of pump signals comprises a time modulated pump signal and wherein an amplified spontaneous emission penalty associated with the at least one time modulated pump signal comprises no more than fifteen (15) decibels.
- 2. The optical amplifier of claim 1, wherein each of the plurality of pump signals comprises a different center wavelength.
- 3. The optical amplifier of claim 1, wherein at least two of the plurality of pump signals comprise orthogonally polarized pump signals comprising approximately the same center wavelength.
- 4. The optical amplifier of claim 1, wherein the time modulated pump signal propagates through the gain medium counter to the direction of the optical signal.
- 5. The optical amplifier of claim 4, further comprising a pump signal traversing through the gain medium in the same direction as the optical signal.
- 6. The optical amplifier of claim 1, wherein each of the plurality of pump signals propagate through the gain medium counter to the direction of the optical signal.
- 7. The optical amplifier of claim 1, wherein the optical signal comprises a multiple wavelength optical signal.
- 8. The optical amplifier of claim 1, wherein a modulation waveform of the time modulated pump signal is selected to control power transfer between others of the plurality of pump signals and the time modulated pump signal.
- 9. The optical amplifier of claim 1, wherein the time modulated pump signal comprises a substantially periodic variation between a higher power portion and a lower power portion.
- 10. The optical amplifier of claim 9, wherein the higher power portion of the time modulated pump signal comprises no more than thirty percent (30%) of a representative period of the time modulated pump signal.
- 11. The optical amplifier of claim 9, wherein the higher power portion of the time modulated pump signal comprises at least thirty percent (30%) of a representative period of the time modulated pump signal.
- 12. The optical amplifier of claim 1, wherein the time modulated pump signal comprises a non-zero minimum power level.
- 13. The optical amplifier of claim 1, wherein all wavelengths of the optical signal experience an amplified spontaneous emission penalty of no more than fifteen (15) decibels.
- 14. The optical amplifier of claim 1, wherein at least one waveform characteristic of the time modulated pump signal is selected to control an amplified spontaneous emission penalty co-propagating with the at least one time modulated pump signal while maintaining a desired gain level.
- 15. The optical amplifier of claim 14, wherein the at least one waveform characteristic of the time modulated pump signal comprises a characteristic selected from a group consisting of a modulation repetition rate, a duty cycle, an extinction ratio, and a peak power.
- 16. The optical amplifier of claim 14, wherein the at least one waveform characteristic of the time modulated pump signal comprises a duty cycle of at least twenty (20) percent.
- 17. The optical amplifier of claim 14, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation depth of no more than thirteen (13) decibels.
- 18. The optical amplifier of claim 14, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation repetition rate of at least 500 kilohertz.
- 19. The optical amplifier of claim 14, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation repetition rate of at least two (2) megahertz.
- 20. The optical amplifier of 14, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation repetition rate of at least ten (10) megahertz.
- 21. The optical amplifier of claim 1, wherein at least a non-zero power portion of the time modulated pump signal at least partially overlaps with a non-zero power portion of another of the plurality of pump signals over at least a portion of the gain medium.
- 22. The optical amplifier of claim 1, wherein the peak power of the time modulated pump signal increases as a result of interaction with another of the plurality of pump signals over at least a portion of the gain medium.
- 23. The optical amplifier of claim 1, wherein a maximum peak power of the time modulated pump signal occurs at some distance from a location where the time modulated pump signal enters the gain medium.
- 24. The optical amplifier of claim 1, wherein the time modulated pump signal comprises a peak power that is higher than a maximum rated continuous wave (CW) power of an optical source generating the time modulated pump signal.
- 25. The optical amplifier of claim 1, wherein each of the plurality of pump signals is generated by a separate optical source.
- 26. The optical amplifier of claim 1, wherein the time modulated pump signal is generated by a semiconductor laser diode receiving a modulated drive current.
- 27. The optical amplifier of claim 1, wherein the gain medium comprises at least a portion of a transmission fiber in a distributed Raman amplification stage.
- 28. The optical amplifier of claim 1, wherein the gain medium comprises a gain fiber in a discrete Raman amplification stage.
- 29. The optical amplifier of claim 1, wherein the amplified spontaneous emission penalty associated with the at least one time modulated pump signal comprises no more than ten (10) decibels.
- 30. The optical amplifier of claim 1, wherein the amplified spontaneous emission penalty associated with the at least one time modulated pump signal comprises no more than five (5) decibels.
- 31. The optical amplifier of claim 1, wherein the amplified spontaneous emission penalty associated with the at least one time modulated pump signal comprises no more than two (2) decibels.
- 32. The optical amplifier of claim 1, wherein the amplified spontaneous emission penalty is based at least in part on an amplified spontaneous emission signal co-propagating with the at least one time modulated pump signal.
- 33. The optical amplifier of claim 1, wherein at least two of the plurality of pump signals comprise time modulated pump signals.
- 34. The optical amplifier of claim 33, further comprising a control module operable to synchronize at least some of the at least two time modulated pump signals over at least a portion of the gain medium.
- 35. The optical amplifier of claim 34, wherein the control module comprises one or more phase shifters operable to alter the phases of at least one of the at least two time modulated pump signals relative to at least one other of the at least two time modulated pump signals.
- 36. The optical amplifier of claim 34, wherein the control module comprises:
one or more modulators operable to generate electronic waveforms to be applied as drive currents to the pump assembly to generate the at least two time modulated pump signals; and one or more electronic phase shifters operable to alter the phases of the electronic waveforms relative to one another.
- 37. The optical amplifier of claim 1, wherein the at least one Raman amplifier stage comprises a lower average noise figure over at least a portion of the gain spectrum than the same amplifier stage would exhibit if the time modulated pump signal were held at a constant power.
- 38. The optical amplifier of claim 1, wherein at least one waveform characteristic of the at least one time modulated pump signal is selected to maintain a ratio of a time-averaged amplified spontaneous emission (ASE) power level to a minimum ASE power level of less than thirty (30), and wherein the time-averaged ASE power level and the minimum ASE power level co-propagate with the at least one time modulated pump signal.
- 39. The optical amplifier of claim 1, further comprising:
another one or more pump sources operable to generate another plurality of pump signals capable of being delivered to another gain medium carrying at least some of wavelengths of the optical signal; at least one optical isolator coupled between the gain medium and the another gain medium and operable to remove at least a portion of an amplified spontaneous emission signal that is propagating in the same direction as at least some of the another plurality of pump signals.
- 40. An optical amplifier comprising at least one Raman amplification stage, the Raman amplification stage comprising:
one or more pump sources operable to generate a plurality of pump signals capable of being delivered to a gain medium carrying an optical signal, wherein at least one of the plurality of pump signals comprises a time modulated pump signal; wherein at least one waveform characteristic of the time modulated pump signal is selected to maintain a ratio of a time-averaged amplified spontaneous emission (ASE) power level to a minimum ASE power level of less than thirty (30); and wherein the time-averaged ASE power level and the minimum ASE power level co-propagate with the at least one time modulated pump signal.
- 41. The optical amplifier of claim 40, wherein the gain medium comprises a portion of a distributed Raman amplification stage.
- 42. The optical amplifier of claim 40, wherein the time modulated pump signal propagates through the gain medium counter to the direction of the optical signal.
- 43. The optical amplifier of claim 40, wherein the time modulated pump signal comprises a non-zero minimum power level.
- 44. The optical amplifier of claim 40, wherein at least one other of the plurality of pump signals comprises a non-modulated non-zero power pump signal.
- 45. The optical amplifier of claim 40, wherein at least two of the plurality of pump signals comprise time modulated pump signals.
- 46. The optical amplifier of claim 40, wherein the at least one waveform characteristic of the time modulated pump signal comprises a characteristic selected from a group consisting of a modulation repetition rate, a duty cycle, an extinction ratio, and a peak power.
- 47. The optical amplifier of claim 40, wherein the at least one waveform characteristic of the time modulated pump signal comprises a duty cycle of at least twenty (20) percent.
- 48. The optical amplifier of claim 40, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation depth of no more than thirteen (13) decibels.
- 49. The optical amplifier of claim 40, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation repetition rate of at least 500 kilohertz.
- 50. The optical amplifier of claim 40, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation repetition rate of at least ten (10) megahertz.
- 51. The optical amplifier of claim 40, wherein the at least one waveform characteristic of the time modulated pump signal is selected to maintain the ratio of the time-averaged ASE power level to the minimum ASE power level of less than ten (10).
- 52. The optical amplifier of claim 40, wherein the at least one waveform characteristic of the time modulated pump signal is selected to maintain the ratio of the time-averaged ASE power level to the minimum ASE power level of less than three (3).
- 53. The optical amplifier of claim 40, wherein the at least one waveform characteristic of the time modulated pump signal is selected to provide a gain enhancement to the Raman amplifier stage compared to a signal gain that stage would experience if the time modulated pump signal was a continuous wave signal.
- 54. The optical amplifier of claim 53, wherein the gain enhancement comprises a higher gain level than the amplifier stage would experience if the time modulated pump signal was a continuous wave signal having the same average power.
- 55. The optical amplifier of claim 53, wherein the gain enhancement comprises a flatter gain profile over at least a portion of the wavelengths received by the amplifier stage than the amplifier stage would experience if the time modulated pump signal was a continuous wave signal having the same average power.
- 56. The optical amplifier of claim 53, wherein the gain enhancement comprises a reduced average pump power in at least one pump signal needed to achieve the same signal gain that the amplifier stage would experience if the time modulated pump signal was a continuous wave signal.
- 57. The optical amplifier of claim 40, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation repetition rate of no more than 10 megahertz and wherein another waveform characteristic of the time modulated pump signal is selected to reduce a noise figure of the amplifier stage.
- 58. The optical amplifier of claim 57, wherein the another waveform characteristic of the time modulated pump signal comprises a characteristic selected from a group consisting of a duty cycle, an extinction ratio, and a peak power.
- 59. The optical amplifier of claim 40, wherein the optical signal comprises a multiple wavelength optical signal.
- 60. The optical amplifier of claim 40, wherein the at least one waveform characteristic of the time modulated pump signal is selected to maintain the ratio of the time-averaged ASE power level to the minimum ASE power level of less than thirty (30) for all wavelengths of the optical signal.
- 61. An optical amplifier comprising at least one Raman amplification stage, the Raman amplification stage comprising:
one or more pump sources operable to generate a plurality of pump signals capable of being delivered to a gain medium carrying an optical signal, wherein at least one of the plurality of pump signals comprises a time modulated pump signal; wherein a modulation rate of the time modulated pump signal is no more than 10 megahertz and wherein another waveform characteristic of the time modulated pump signal is selected to reduce a noise figure of the amplifier stage.
- 62. The optical amplifier of claim 61, wherein the modulation rate of the time modulated pump signal is no more than 5 megahertz.
- 63. The optical amplifier of claim 61, wherein a modulation rate of the time modulated pump signal is no more than 3 megahertz.
- 64. The optical amplifier of claim 61, wherein a modulation rate of the time modulated pump signal is no more than 1 megahertz.
- 65. The optical amplifier of claim 61, wherein the another waveform characteristic of the time modulated pump signal comprises a characteristic selected from a group consisting of a duty cycle, an extinction ratio, and a peak power.
- 66. The optical amplifier of claim 61, wherein the another waveform characteristic of the time modulated pump signal comprises a duty cycle of at least twenty (20) percent.
- 67. The optical amplifier of claim 61, wherein the another waveform characteristic of the time modulated pump signal comprises a modulation depth of no more than thirteen (13) decibels.
- 68. The optical amplifier of claim 61, wherein a maximum gain level of the amplification stage is selected to obtain a minimum noise figure.
- 69. The optical amplifier of claim 61, wherein an amplified spontaneous emission penalty associated with the at least one time modulated pump signal comprises no more than fifteen (15) decibels.
- 70. The optical amplifier of claim 61, wherein the another waveform characteristic of the time modulated pump signal is selected to maintain a ratio of a time-averaged amplified spontaneous emission (ASE) power level to a minimum ASE power level of less than thirty (30), and wherein the time-averaged ASE power level and the minimum ASE power level co-propagate with the at least one time modulated pump signal.
- 71. An optical amplifier comprising at least one Raman amplification stage, the Raman amplification stage comprising:
one or more pump sources operable to generate a plurality of pump signals capable of being delivered to a gain medium carrying an optical signal, wherein at least one of the plurality of pump signals comprises a time modulated pump signal; wherein a modulation repetition rate of the time modulated pump signal is selected to provide a noise figure degradation of one (1) decibel or less for at least some wavelengths of the optical signal.
- 72. The optical amplifier of claim 71, wherein the modulation repetition rate comprises at least 500 kilohertz.
- 73. The optical amplifier of claim 71, wherein the modulation repetition rate comprises at least one (1) megahertz.
- 74. The optical amplifier of claim 71, wherein the modulation repetition rate comprises at least ten (10) megahertz.
- 75. The optical amplifier of claim 71, wherein the modulation repetition rate comprises no more than five (5) megahertz.
- 76. The optical amplifier of claim 71, wherein an amplified spontaneous emission penalty associated with the at least one time modulated pump signal comprises no more than fifteen (15) decibels.
- 77. The optical amplifier of claim 71, wherein another waveform characteristic of the time modulated pump signal is selected to maintain a ratio of a time-averaged amplified spontaneous emission (ASE) power level to a minimum ASE power level of less than thirty (30), and wherein the time-averaged ASE power level and the minimum ASE power level co-propagate with the at least one time modulated pump signal.
- 78. A method of amplifying optical signals in a Raman amplification stage, comprising:
generating a plurality of pump signals, wherein at least one of the plurality of pump signals comprises a time modulated pump signal; introducing the plurality of pump signals to a gain medium carrying an optical signal; wherein an amplified spontaneous emission penalty associated with the at least one time modulated pump signal comprises no more than fifteen (15) decibels.
- 79. The method of claim 78, wherein the time modulated pump signal propagates through the gain medium counter to the direction of the optical signal.
- 80. The method of claim 78, wherein the amplified spontaneous emission penalty associated with the at least one time modulated pump signal comprises no more than ten (10) decibels.
- 81. The method of claim 78, wherein the amplified spontaneous emission penalty associated with the at least one time modulated pump signal comprises no more than two (2) decibels.
- 82. The method of claim 78, further comprising selecting at least one waveform characteristic of the time modulated pump signal to control the amplified spontaneous emission penalty associated with the at least one time modulated pump signal while maintaining a gain level of the Raman amplification stage.
- 83. The method of claim 82, wherein the at least one waveform characteristic of the time modulated pump signal comprises a characteristic selected from a group consisting of a modulation repetition rate, a duty cycle, an extinction ratio, and a peak power.
- 84. The method of claim 82, wherein the at least one waveform characteristic of the time modulated pump signal comprises a duty cycle of at least twenty (20) percent.
- 85. The method of claim 82, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation depth of no more than thirteen (13) decibels.
- 86. The method of claim 82, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation repetition rate of at least 500 kilohertz.
- 87. The method of claim 82, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation repetition rate of at least ten (10) megahertz.
- 88. The method of claim 82, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation repetition rate of no more than ten (10) megahertz.
- 89. The method of claim 88, further comprising selecting another waveform characteristic of the time modulated pump signal to reduce a noise figure of the amplifier stage.
- 90. The method of claim 89, wherein the another waveform characteristic of the time modulated pump signal comprises a characteristic selected from a group consisting of a duty cycle, an extinction ratio, and a peak power.
- 91. The method of claim 78, wherein the time modulated pump signal comprises a peak power that is higher than an average power output by an optical source generating that pump signal.
- 92. The method of claim 78, further comprising selecting at least one waveform characteristic of the time modulated pump signal to maintain a ratio of a time-averaged amplified spontaneous emission (ASE) power level to a minimum ASE power level of less than thirty (30), and wherein the time-averaged ASE power level and the minimum ASE power level co-propagate with the at least one time modulated pump signal.
- 93. A method of amplifying optical signals in a Raman amplification stage, comprising:
generating a plurality of pump signals capable of being delivered to a gain medium carrying an optical signal, wherein at least one of the plurality of pump signals comprises a time modulated pump signal; and selecting at least one waveform characteristic of the time modulated pump signal to maintain a ratio of a time-averaged amplified spontaneous emission (ASE) power level to a minimum ASE power level of less than thirty (30); and wherein the time-averaged ASE power level and the minimum ASE power level co-propagate with the at least one time modulated pump signal.
- 94. The method of claim 93, wherein the gain medium comprises a portion of a distributed Raman amplification stage.
- 95. The method of claim 93, wherein the at least one waveform characteristic of the time modulated pump signal comprises a characteristic selected from a group consisting of a modulation repetition rate, a duty cycle, an extinction ratio, and a peak power.
- 96. The method of claim 93, wherein the at least one waveform characteristic of the time modulated pump signal a duty cycle of at least twenty (20) percent.
- 97. The method of claim 93, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation depth of no more than thirteen (13) decibels.
- 98. The method of claim 93, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation repetition rate of at least 500 kilohertz.
- 99. The method of claim 93, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation repetition rate of at least ten (10) megahertz.
- 100. The method of claim 93, wherein the at least one waveform characteristic of the time modulated pump signal is selected to provide a gain enhancement to the Raman amplifier stage compared to the signal gain that stage would experience if the time modulated pump signal was a continuous wave signal.
- 101. The method of claim 100, wherein the gain enhancement comprises a higher gain level than the amplifier stage would experience if the time modulated pump signal was a continuous wave signal having the same average power.
- 102. The method of claim 100, wherein the gain enhancement comprises a reduced average pump power in at least one pump signal needed to achieve the same signal gain that the amplifier stage would experience if the time modulated pump signal was a continuous wave signal.
- 103. The method of claim 93, wherein the at least one waveform characteristic of the time modulated pump signal is selected to maintain the ratio of the time-averaged ASE power level to the minimum ASE power level of less than ten (10).
- 104. The method of claim 93, wherein the at least one waveform characteristic of the time modulated pump signal is selected to maintain the ratio of the time-averaged ASE power level to the minimum ASE power level of less than three (3).
- 105. The method of claim 93, wherein the at least one waveform characteristic of the time modulated pump signal comprises a modulation repetition rate of no more than 10 megahertz.
- 106. The method of claim 105, further comprising selecting another waveform characteristic of the time modulated pump signal to reduce a noise figure of the amplifier stage.
- 107. The method of claim 106, wherein the another waveform characteristic of the time modulated pump signal comprises a characteristic selected from a group consisting of a duty cycle, an extinction ratio, and a peak power.
- 108. A method of amplifying optical signals in a Raman amplification stage, comprising:
generating a plurality of pump signals capable of being delivered to a gain medium carrying an optical signal, wherein at least one of the plurality of pump signals comprises a time modulated pump signal, and wherein a modulation rate of the time modulated pump signal comprises no more than 10 megahertz; and selecting another waveform characteristic of the time modulated pump signal to reduce a noise figure of the amplifier stage.
- 109. The method of claim 108, wherein the modulation rate of the time modulated pump signal comprises no more than 5 megahertz.
- 110. The method of claim 108, wherein a modulation rate of the time modulated pump signal comprises no more than 1 megahertz.
- 111. The method of claim 108, wherein the another waveform characteristic of the time modulated pump signal comprises a characteristic selected from a group consisting of a duty cycle, an extinction ratio, and a peak power.
- 112. The method of claim 108, wherein the another waveform characteristic of the time modulated pump signal comprises a duty cycle of at least twenty (20) percent.
- 113. The method of claim 108, wherein the another waveform characteristic of the time modulated pump signal comprises a modulation depth of no more than thirteen (13) decibels.
- 114. The method of claim 108, further comprising selecting a maximum gain level of the amplification stage to obtain a minimum noise figure.
- 115. The method of claim 108, wherein an amplified spontaneous emission penalty associated with the at least one time modulated pump signal comprises no more than fifteen (15) decibels.
- 116. The method of claim 108, wherein the another waveform characteristic of the time modulated pump signal is selected to maintain a ratio of a time-averaged amplified spontaneous emission (ASE) power level to a minimum ASE power level of less than thirty (30), and wherein the time-averaged ASE power level and the minimum ASE power level co-propagate with the at least one time modulated pump signal.
CROSS-REFERENCE TO RELATED CASES
[0001] This application claims priority to U.S. application Ser. No. 10/100,590, entitled “Enhancing Gain and/or Noise Figure of Raman Amplifier Stages Using Time Modulated Pump Signals,” filed on Mar. 15, 2002, which claims priority to U.S. application Ser. No. 10/032,111, entitled “Time Modulated Pumping of Raman Amplifier Stages,” filed on Dec. 20, 2001.