Claims
- 1. (cancelled)
- 2. The method of claim 4, wherein said co-propagating includes co-propagating optical energy in the second pump wavelength range that overlaps with shorter wavelengths in the first wavelength range.
- 3. The method of claim 2, wherein:
said transmitting includes transmitting optical signals in a signal wavelength range from 1530-1570 mm; said counter-propagating includes counter-propagating optical energy in the first pump wavelength range from 1410 to 1480 nm; and, said co-propagating includes co-propagating optical energy in the second pump wavelength range from 1410 to 1430 nm.
- 4. A method of amplifying optical signals comprising:
transmitting optical signals in a transmission media configured to transmit and provide Raman amplification of the optical signals; counter-propagating optical energy in the transmission media in a first pump wavelength range to produce Raman amplification of the optical signals, wherein the Raman amplification has a corresponding noise figure profile over an optical signal wavelength range; and, co-propagating optical energy with the optical signals in a second pump wavelength range to vary the noise figure profile of the Raman amplification produced by said counter-propagating optical energy over at least a portion of the optical signal wavelength range; imparting information onto a plurality of signal channels; determining a nonlinear interaction limit for the signal channels in the transmission media; controlling the signal channel launch power to produce a level of nonlinear interaction below the nonlinear interaction limit when the signal channels are combined into the optical signals as a WDM optical signal; combining the signal channels into a WDM optical signal; said transmitting including launching the WDM optical signal into the transmission media; and, said co-propagating including co-propagating optical energy with the signal channels in the transmission media to amplify the signal channels and achieve a maximum signal channel power below the nonlinear interaction limit at a point in the transmission media downstream from where the WDM optical signal was launched.
- 5. The method of claim 4, wherein:
said controlling includes, controlling the signal channel launch power to vary inversely with the distance to over which the signal channels are to be transmitted; and, said co-propagating includes co-propagating optical energy at a power that varies directly with the distance over which the signal channels are to be transmitted.
- 6. The method of claim 4, wherein said method includes counter-propagating optical energy to provide Raman gain in the signal channels in the transmission media.
- 7. The method of claim 4, wherein:
said imparting includes imparting the information onto signal channels in the 1520-1630 nm wavelength range; and, said co-propagating includes co-propagating optical energy in the 1400-1520 nm wavelength range to provide Raman gain to the signal channels.
- 8. The method of claim 4, further comprising:
providing at least one pump source configured to supply the optical energy in one or more pump wavelengths having a low relative intensity noise.
- 9. (cancelled)
- 10. The method of claim 8, wherein said providing includes providing the at least one pump source including a laser having a Bragg grating positioned to relative to the laser to form an external cavity to control relative intensity noise of the optical energy.
- 11. The method of claim 10, wherein said providing includes providing the laser with an output facet that includes at least one of an anti-reflective coating and an angled output facet.
- 12. (cancelled)
- 13. The system of claim 16, further comprising:
a plurality of optical amplifiers disposed between said optical nodes and configured to optically amplify the optical signals passing between said nodes, wherein said optical amplifiers include pump sources configured to provide optical energy in a pump wavelength range to produce Raman amplification of the optical signals; and, a gain flattening filter configured to filter a composite gain profile produced by said plurality of optical amplifiers and impart a desired gain profile to the optical signals.
- 14. The system of claim 13, wherein:
said plurality of optical amplifiers includes a plurality of different pump sources providing different amounts of optical energy in pump wavelengths within the pump wavelength range; and, said Raman gain flattening filter is configured to filter the composite gain profile produced by the pump wavelengths.
- 15. The system of claim 13, wherein said plurality of optical amplifiers includes at least one of distributed and concentrated Raman amplifiers.
- 16. An optical system comprising:
at least two optical nodes configured to transmit and receive optical signals between said nodes via a transmission media configured to provide Raman amplification of the optical signals; a counter-pump source configured to counter-propagate optical energy in the transmission media in a first jump wavelength range to produce Raman amplification of the optical signals, wherein the Raman amplification has a corresponding noise figure profile over an optical signal wavelength range; a co-jump source configured to co-propagate optical energy with the optical signals in a second pump wavelength range to vary the noise figure profile of the Raman amplification produced by said counter-propagating optical energy over at least a portion of the optical signal wavelength range; wherein at least one of said processing nodes is configured to launch optical signals into said transmission media at a power below a nonlinear interaction limit of said transmission media; at least one pump source positioned to co-propagate optical energy with the optical signals in said transmission media to amplify the signal channels and achieve a maximum signal channel power below the nonlinear interaction limit at a point in the transmission media downstream from said first processing node.
- 17. The system of claim 16, wherein:
said system includes at least one optical amplifier configured to amplify the signal channels passing through said amplifier; said at least one pump source includes at least one pump included with said optical amplifier and configured to co-propagate optical energy with the optical signals to amplify the signal channels and achieve a maximum signal channel power below the nonlinear interaction limit at a point in said transmission media downstream from said optical amplifier.
- 18. (cancelled)
- 19. The system of claim 16, wherein said system includes launching signal channels in the 1520-1630 nm transmission range; and,
said at least one pump source provides optical energy in the 1400-1520 nm wavelength range to amplify the signal channels via stimulated Raman scattering.
- 20. (cancelled)
- 21. The system of claim 16, wherein said transmission media includes at least first and second fiber sections, wherein
said first fiber section has a first core diameter and is disposed between the node transmitting optical signals and the second fiber section, and, said second fiber section has a second core diameter that is less than the first core diameter and is disposed between the node receiving optical signals and the first fiber section.
- 22. The system of claim 21, further comprising at least one optical amplifier disposed between said at least two optical nodes and configured to amplify optical signals passing from one of the second fiber sections to one of the first fiber sections.
- 23. An optical system comprising:
at least two optical nodes configured to transmit and receive optical signals between said nodes via a transmission media configured to support Raman amplification of the optical signals, wherein said transmission media includes transmission fiber having a plurality of first and second fiber sections, wherein the first fiber section has a first core diameter, and the second fiber section has a second core diameter that is less than the first core diameter; a plurality of optical amplifiers disposed between said at least two optical nodes, wherein at least one of the plurality of optical amplifier between one of the first and second fiber sections and configured to propagate optical energy in a first pump wavelength range in at least one of the first and second fiber sections to produce Raman amplification of the optical signals passing through the at least one of the fiber sections.
- 24. The system of claim 23, wherein:
one of the second fiber sections is connected to one of the optical nodes that is configured to receive optical signals from the one of the second fiber section; and, one of the first fiber sections is connected to one of the optical nodes that is configured to transmit optical signals into the one of the first fiber sections.
- 25. The system of claim 23, wherein:
each of the plurality of optical amplifiers has an input connected to one of the second fiber sections and an output connected to one of the first fiber sections and is configured to counter-propagate optical energy in the transmission media of the second fiber section in a first pump wavelength range to produce Raman amplification of the optical signals passing through the second fiber section.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part (“CIP”) of commonly assigned U.S. Provisional Application No. 60/127,665 filed Apr. 2, 1999, which is incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60127665 |
Apr 1999 |
US |
Continuations (2)
|
Number |
Date |
Country |
Parent |
10046962 |
Jan 2002 |
US |
Child |
10893050 |
Jul 2004 |
US |
Parent |
09540708 |
Mar 2000 |
US |
Child |
10046962 |
Jan 2002 |
US |