Claims
- 1. A Raman amplifier assembly, comprising:
a Raman amplifier configured to receive a signal of at least one wavelength from a signal source with the signal traveling in an upstream direction in the Raman amplifier; a first pump source coupled to the Raman amplifier producing a first pump beam that travels in a downstream direction and is counter-propagating relative to the signal; and a second pump source coupled to the Raman amplifier producing a second pump beam that travels in the upstream direction, the second pump source having an average relative intensity noise of less than −80 dB/Hz.
- 2. The assembly of claim 1, wherein the second pump beam pumps the first pump beam.
- 3. The assembly of claim 1, wherein the average relative intensity noise from 1-10 GHz is less than −80 dB/Hz.
- 4. The assembly of claim 1, wherein the average relative intensity noise from 100 MHz to 1 GHz is less than −90 dB/Hz.
- 5. The assembly of claim 1, wherein the average relative intensity noise from 0-100 MHz is less than −100 dB/Hz.
- 6. The assembly of claim 1, wherein the second pump beam provides more gain to the first pump beam than to the signal.
- 7. The assembly of claim 1, wherein at least one wavelength of the second pump beam is shorter than at least one wavelength of the first pump beam.
- 8. The assembly of claim 1, wherein the first and second pump sources are laser diode sources.
- 9. The assembly of claim 1, wherein the Raman amplifier is a distributed Raman amplifier that includes a signal transmission line, wherein at least a portion of the signal transmission line incorporates therein a distributed gain medium.
- 10. The assembly of claim 1, wherein the Raman amplifier is a discrete Raman amplifier that includes a distributed gain medium that is coupled to a signal transmission line.
- 11. The assembly of claim 1, further comprising:
a WDM coupled to the Raman amplifier and the first pump source, the first pump source including a plurality of laser diodes.
- 12. The assembly of claim 1, further comprising:
a WDM coupled to the Raman amplifier and the second pump source, the second pump source including a plurality of laser diodes.
- 13. The assembly of claim 11, further comprising a polarization beam combiner coupled to the plurality of laser diodes.
- 14. The assembly of claim 12, further comprising a polarization beam combiner coupled to the plurality of laser diodes.
- 15. The assembly of claim 1, wherein the second pump source produces an output in the range of 1300 to 1430 nm.
- 16. The assembly of claim 1, wherein the second pump source produces an output in the range of 1365 to 1390 nm.
- 17. The assembly of claim 1, wherein the first pump source produces an output in the range of 1380 to 1530 nm.
- 18. The assembly of claim 1, wherein the first pump source produces an output in the range of 1450 to 1480 nm.
- 19. A multi-stage Raman amplifier apparatus, comprising:
a first Raman amplifier configured to receive a signal of at least one wavelength from a signal source with the signal traveling in an upstream direction in the first Raman amplifier; a first pump source coupled to the first Raman amplifier producing a first pump beam in a downstream direction that is counter-propagating relative to the signal; a second pump source coupled to the first Raman amplifier producing a second pump beam that travels in the upstream direction; a second Raman amplifier; and a third pump source coupled to the second Raman amplifier producing a third pump beam traveling in the downstream direction.
- 20. The assembly of claim 19, wherein the second pump beam pumps the first pump beam.
- 21. The assembly of claim 19, wherein the second pump source has an average relative intensity noise of less than −80 dB/Hz.
- 22. The assembly of claim 21, wherein the average relative intensity noise from 1-10 GHz is less than −80 dB/Hz.
- 23. The assembly of claim 21, wherein the average relative intensity noise from 100 MHz to 1 GHz is less than −90 dB/Hz.
- 24 The assembly of claim 21, wherein the average relative intensity noise from 0-100 MHz is less than −100 dB/Hz.
- 25. The apparatus of claim 19, further comprising:
a fourth pump source coupled to the second Raman amplifier producing a fourth pump beam that travels in the upstream direction.
- 26. The apparatus of claim 19, further comprising:
an isolator coupled to the second Raman amplifier.
- 27. The apparatus of claim 19, wherein the first Raman amplifier is a low-noise preamplifier and the second Raman amplifier is a power amplifier.
- 28. The apparatus of claim 19, further comprising:
a pump shunt coupled to the first and second Raman amplifiers.
- 29. The apparatus of claim 19, further comprising:
a first isolator positioned between the first and second Raman amplifiers.
- 30. The apparatus of claim 29, further comprising:
a second isolator coupled to the pump shunt.
- 31. A Raman amplifier assembly, comprising:
an optical transmission line including a first port and a second port, at least a portion of the optical transmission line producing Raman gain; a first pump source producing a first pump beam, the first pump beam and a first signal of multiple wavelengths entering the first port and traveling in a downstream direction from the first port to the second port; and a second pump source producing a second pump beam, the second pump beam and a second signal of multiple wavelengths entering the second port and traveling in an upstream direction from the second port to the first port, wherein at least a portion of the second pump beam pumps the first pump beam, and at least a portion of the first signal of multiple wavelengths has shorter wavelengths than the second signal of multiple wavelengths.
- 32. The assembly of claim 31, further comprising:
a first WDM coupled to the first port; and a second WDM coupled to the second port.
- 33. The assembly of claim 31, wherein the first pump beam is in the wavelength range of 1430 to 1530 nm and the second pump beam is in the wavelength range of 1350 to 1480 nm.
- 34. The assembly of claim 31, wherein the first pump beam is in the wavelength range of 1450 to 1510 nm and the second pump beam is in the wavelength range of 1380 to 1440 nm.
- 35. The assembly of claim 31, wherein the first signal of multiple wavelengths is in the range of 1430 to 1530 nm and the second signal of multiple wavelengths is in the range of 1525 to 1630 nm.
- 36. The assembly of claim 31, wherein the first signal of multiple wavelengths is in the range of 1480 to 1530 nm and the second signal of multiple wavelengths is in the range of 1525 to 1610 nm.
- 37. The apparatus of claim 31, wherein the first pump beam provides gain to at least a portion of the second signal of multiple wavelengths and extracts optical energy from the second pump beam.
- 38. The apparatus of claim 31, wherein a length of the optical transmission line is at least 40 kilometers.
- 39. The apparatus of claim 31, wherein a length of the optical transmission line is at least 80 kilometers.
- 40. The apparatus of claim 32, further comprising:
at least a first polarization beam combiner coupled to the first WDM and a second polarization beam combiner coupled to the second WDM.
- 41. The apparatus of claim 31, wherein the first and second pump sources are laser diode sources.
- 42. A Raman amplifier assembly, comprising:
a Raman amplifier configured to receive a signal of at least one wavelength from a signal source with the signal traveling in an upstream direction in the Raman amplifier; a first pump source coupled to the Raman amplifier producing a first pump beam that travels in a downstream direction and is counter-propagating relative to the signal; and a second pump source coupled to the Raman amplifier producing a second pump beam that travels in the upstream direction, the second pump source having an average relative intensity noise of less than −80 dB/Hz., wherein the second pump beam has at least one wavelength that is shorter than at least one wavelength of the first pump beam.
- 43. The assembly of claim 42, wherein the second pump beam pumps the first pump beam.
- 44. The assembly of claim 42, wherein the average relative intensity noise from 1-10 GHz is less than −80 dB/Hz.
- 45. The assembly of claim 42, wherein the average relative intensity noise from 100 MHz to 1 GHz is less than −90 dB/Hz.
- 46. The assembly of claim 42, wherein the average relative intensity noise from 0-100 MHz is less than −100 dB/Hz.
- 47. The assembly of claim 42, wherein the wavelengths of the second pump beam are at least 20 nm shorter than the wavelengths of the first pump beam.
- 48. The assembly of claim 42, wherein the wavelengths of the second pump beam are at least 40 nm shorter than the wavelengths of the first pump beam.
- 49. The assembly of claim 42, wherein the wavelengths of the second pump beam are no more than 120 nm shorter than the wavelengths of the first pump beam.
- 50. The assembly of claim 42, wherein the wavelengths of the second pump beam are no more than 100 nm shorter than the wavelengths of the first pump beam.
- 51. The assembly of claim 42, wherein the second pump beam provides more gain to the first pump beam than to the signal.
- 52. The assembly of claim 42, wherein the first and second pump sources are laser diode sources.
- 53. The assembly of claim 42, wherein the Raman amplifier is a distributed Raman amplifier that includes a signal transmission line, wherein at least a portion of the signal transmission line incorporates therein a distributed gain medium.
- 54. The assembly of claim 42, wherein the Raman amplifier is a discrete Raman amplifier that includes a distributed gain medium that is coupled to a signal transmission line.
- 55. A method of broadband amplification, comprising:
providing a Raman amplifier assembly including an optical transmission line with a first port and a second port, at least a portion of the optical transmission line producing Raman gain; pumping the Raman amplifier assembly with at least a first pump beam and a second pump beam, at least a portion of the second pump beam pumping the first pump beam; introducing a first signal of multiple wavelengths into the first port and a second signal of multiple wavelengths into the second port; and amplifying the first and second signals of multiple wavelengths.
- 56. The method of claim 55, wherein at least a portion of the first signal of multiple wavelengths has shorter wavelengths than the second signal of multiple wavelengths.
- 57. The method of claim 55, wherein the first pump beam and the first signal of multiple wavelengths enter the first port and travel in a downstream direction from the first port to the second port.
- 58. The method of claim 55, wherein the second pump beam and the second signal of multiple wavelengths enter the second port and travel in an upstream direction from the second port to the first port.
- 59. The method of claim 55, wherein the first pump beam is in the wavelength range of 1430 to 1530 nm and the second pump beam is in the wavelength range of 1350 to 1480 nm.
- 60. The method of claim 55, wherein the first pump beam is in the wavelength range of 1450 to 1510 nm and the second pump beam is in the wavelength range of 1380 to 1440 nm.
- 61. The method of claim 55, wherein the first signal of multiple wavelengths is in the range of 1430 to 1530 nm and the second signal of multiple wavelengths is in the range of 1525 to 1630 nm.
- 62. The method of claim 55, wherein the first signal of multiple wavelengths is in the range of 1480 to 1530 nm and the second signal of multiple wavelengths is in the range of 1525 to 1610 nm.
- 63. A method of broadband amplification, comprising:
providing a first pump source, a second pump source with an average relative intensity noise of less than −80 dB/Hz and a Raman amplifier assembly including an optical transmission line with a first port and a second port, at least a portion of the optical transmission line producing Raman gain; pumping the Raman amplifier assembly at the first port with at least a first pump beam and at the second port with a second pump beam, the second pump beam having at least one wavelength that is shorter than at least one wavelength of the first pump beam; introducing a signal of at least one wavelength into the second port; and amplifying the signal.
- 64. The method of claim 63, wherein at least a portion of the second pump beam pumps the first pump beam.
- 65. The method of claim 63, wherein the first pump beam is in the wavelength range of 1430 to 1530 nm and the second pump beam is in the wavelength range of 1350 to 1480 nm.
- 66. The method of claim 63, wherein the first pump beam is in the wavelength range of 1450 to 1510 nm and the second pump beam is in the wavelength range of 1380 to 1440 nm.
- 67. A Raman amplifier assembly, comprising:
a Raman amplifier configured to receive a signal of at least one wavelength from a signal source with the signal traveling in an upstream direction in the Raman amplifier; a first pump source coupled to the Raman amplifier producing a first pump beam that travels in a downstream direction and is counter-propagating relative to the signal; and a second pump source coupled to the Raman amplifier producing a second pump beam that travels in the upstream direction and pumps the first pump beam, wherein the second pump beam provides at least 5% of the gain to at least a portion of the signal.
- 68. The assembly of claim 67, wherein the first pump source is substantially depolarized.
- 69. The assembly of claim 68, wherein polarization dependence of a signal gain of the signal is less than 2 dB.
- 70. The assembly of claim 68, wherein the first pump source is depolarized by polarization scrambling.
- 71. The assembly of claim 68, wherein the first pump source is depolarized by polarization multiplexing of at least two pump sources.
- 72. The assembly of claim 68, wherein the second pump source is substantially depolarized.
- 73. The assembly of claim 67, wherein the second pump beam provides at least 5% of the gain to a majority of wavelengths of the signal.
- 74. The assembly of claim 67, wherein the second pump beam provides at least 10% of the gain to a majority of wavelengths of the signal.
- 75. The assembly of claim 67, wherein the second pump beam provides at least 50% of the gain to at least a portion of the signal.
REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of and claims the benefit of priority from 60/175,786, filed Jan. 12, 2000, which is fully incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60175786 |
Jan 2000 |
US |