Claims
- 1. A system for pumping a transmission fiber of an optical fiber telecommunications span to produce distributed Raman gain in the fiber for amplifying signals being transmitted along the fiber span, comprising:
one or more primary pump sources at wavelengths λp1 . . . λpl, shorter than pump wavelengths λƒ1 . . . λƒk ultimately required to directly produce distributed Raman gain for the signal wavelengths; wherein the wavelengths λp1 . . . λpi of said one or more primary pump sources are shorter than said wavelengths λƒ1 . . . λƒk by an amount corresponding to m Raman shifts in said transmission fiber, where m≧1; means to provide substantially lower energy at one or more secondary seed wavelengths λs1 . . . λsn, where n≧1 and λpl<λsn≦λƒk; wherein the ensemble of said one or more secondary seed wavelengths λs1 . . . λsn includes each ultimately-required wavelength λƒk, and wherein, if m>1, the ensemble of said secondary seed wavelengths λs1 . . . λsn includes at least one in the vicinity of each intermediate wavelength λl, wherel=m−1, m−2 . . . 1 and denotes the number of Raman shifts in said transmission fiber between said wavelength λl and the ultimately-required wavelengths λƒ1 . . . λƒk; and coupling means to input energy at said one or more primary pump source wavelengths λp1 . . . λpl and energy at said one or more secondary seed wavelengths λs1 . . . λsn, into said transmission fiber.
- 2. The system of claim 1, wherein at least one of said one or more primary pump sources at wavelengths λp1 . . . λpl comprises a Raman fiber laser operating at one or a plurality of wavelengths.
- 3. The system of claim 1, wherein at least one of said one or more primary pump sources at wavelengths λp1 . . . λpl comprises a number of polarization- and/or wavelength-multiplexed laser diodes of essentially equal wavelength.
- 4. The system of claim 1, 2 or 3, wherein said energy provided at one or more of said secondary seed wavelengths λs1 . . . λsn is provided by a laser diode or a pair of polarization-multiplexed laser diodes of equal wavelength.
- 5. The system of one of claims 1 to 4, wherein at least one of said one or more primary pump sources at wavelengths λp1 . . . λpi is a tunable pump source.
- 6. The system of one of claims 1 to 5, wherein at least one of said one or more secondary seed wavelengths λs1 . . . λsn is a tunable secondary seed wavelength.
- 7. The system of one of claims 1 to 6, wherein said energy provided at said one or more secondary seed wavelengths λs1 . . . λsn and said energy provided from said one or more primary pump sources at wavelengths λp1 . . . λpl are launched into said transmission fiber from a receiving or repeater terminal in a counter-propagating direction with respect to said signals.
- 8. The system of one of claims 1 to 6, wherein said energy provided at said one or more secondary seed wavelengths λs1 . . . λsn and said energy provided from said one or more primary pump sources at wavelengths λp1 . . . λpl are launched into said transmission fiber from a transmitter or repeater terminal in a co-propagating direction with respect to said signals.
- 9. The system of one of claims 1 to 6, wherein said energy provided at said one or more secondary seed wavelengths λs1 . . . λsn and said energy provided from said one or more primary pump sources at wavelengths λp1 . . . λpl are launched into said transmission fiber from some point intermediate between transmitter and receiver or repeater terminals, either to co-propagate or to counter propagate with said signals.
- 10. The system of one of claims 1 to 6, wherein said energy provided at one or more of said one or more secondary seed wavelengths λs1 . . . λsn and said energy provided at said one or more primary pump source wavelengths λp1 . . . λpl are launched into said transmission fiber from more than one launch location simultaneously, in co-propagating and/or counter-propagating directions with respect to said signals.
- 11. The system of one of claims 1 to 10, wherein said means for coupling energy at said one or more primary pump source wavelengths λp1 . . . λpl into said transmission fiber includes at least one optical circulator.
- 12. The system of claim 11, wherein said optical circulator further couples energy at said one or more secondary seed wavelengths λs1 . . . λsn, into said transmission fiber.
- 13. The system of one of claims 1 to 12, wherein said one or more primary pump source wavelengths λp1 . . . λpl and said one or more secondary seed wavelengths λs1 . . . λsn are selected in order to broaden and/or tailor the spectral profile of the Raman gain experienced by said signals.
- 14. The system of one of claims 1 to 12, wherein the power and/or the wavelengths of said primary pump radiation and/or said secondary seed radiation is (are) selectively altered to dynamically control said Raman gain and/or the gain spectral profile to compensate for gain changes and/or gain tilt resulting from changes in the powers and/or wavelengths of the transmitted signal channels.
- 15. The system one of claims 1 to 14, and wherein said energy provided at one or more of said secondary seed wavelengths λs1 . . . λsn is provided by incorporating reflection means to return, into said transmission fiber, amplified spontaneous Raman scattered radiation, originating in said fiber due to the presence of high power at a wavelength one Raman shift below the particular seed wavelength.
- 16. The system of claim 15, wherein said reflection means is a fiber Bragg grating.
- 17. The system of claim 16, wherein the peak reflection wavelength of said fiber Bragg grating is tunable.
- 18. The system of claim 15, wherein said reflection means is a broadband reflector.
- 19. A system for applying dynamic control of the magnitude and/or spectral profile of the distributed Raman gain at, or near, a signal launch terminal of an optical fiber telecommunications span in which counter-propagating distributed Raman preamplification is being applied at a receiving or repeater end of the span or at some intermediate point along the span, resulting in residual energy at final direct-pumping wavelengths λƒl . . . λƒk nearing said signal launch terminal, said system comprising:
one or more moderate-power secondary pump sources at wavelengths λss1 . . . λssj shorter than the pump wavelengths λƒ1 . . . λƒk ultimately required to directly produce distributed Raman gain for the signal wavelengths, wherein said one or more secondary pump source wavelengths λss1 . . . λssj are shorter than said wavelengths λƒ1 . . . λƒk by an amount corresponding to the Raman shift in the transmission fiber; coupling means to input radiation from said one or more secondary pump sources at wavelengths λss1 . . . λssj into the transmission fiber from said signal launch terminal of an optical fiber telecommunications span or from an intermediate point near said launch terminal, to travel in a co-propagating direction with respect to said signals; and means to selectively alter the power and/or wavelength of said one or more secondary pump sources at wavelengths λss1 . . . λssj to dynamically control the Raman gain experienced by said incoming residual radiation at said final direct-pumping wavelengths λƒ1 . . . λƒk, and thereby to dynamically control the magnitude and/or spectral profile of the resulting additional Raman gain experienced by the signals being launched.
- 20. The system as claimed in claim 19, wherein at least one of said one or more secondary pump sources at wavelengths λss1 . . . λssj is a Raman fiber laser operating at one or a plurality of wavelengths.
- 21. The system as claimed in claim 19, wherein the output wavelength of at least one of said one or more secondary pump sources at wavelengths λss1 . . . λssj is tunable.
- 22. A method of pumping a transmission fiber of an optical fiber telecommunications span to produce distributed Raman gain in the fiber for signals being transmitted along said fiber span, said method comprising the steps of:
(a) providing energy at one or more primary pump source wavelengths λp1 . . . λpl shorter than pump wavelengths λƒ1 . . . λƒk ultimately required to directly produce distributed Raman gain for the signal wavelengths; (b) providing substantially lower energy at one or more secondary seed wavelengths λs1 . . . λsn, where n≧1 and λpi<λsn≦λƒk; and (c) propagating the energy at the primary pump wavelengths and secondary seed wavelengths in said transmission fiber; and wherein (i) said primary pump wavelengths λp1 . . . λpl, are shorter than said wavelengths λƒ1 . . . λƒk by an amount corresponding to m Raman shifts in said transmission fiber, where m≧1; (ii) the ensemble of said secondary seed wavelengths λs1 . . . λsn includes each ultimately required pump wavelength λƒ1 . . . λƒk; and (iii) if m>1, the ensemble of secondary seed wavelengths λs1 . . . λsn includes at least one in the vicinity of each intermediate wavelength λl, where l=m−1, m−2 . . . 1, and denotes the number of Raman shifts in said transmission fiber between said wavelength λl and the ultimately required wavelengths λƒ1 . . . λƒk.
- 23. A method according to claim 22, wherein the energy at the primary pump wavelengths and the secondary seed wavelengths are launched into the transmission fiber from a receiving or repeater terminal in a counter-propagating direction with respect to said signals.
- 24. A method according to claim 22, wherein the energy at the primary pump wavelengths and the secondary seed wavelengths are launched into the transmission fiber from a transmitter or repeater terminal in a co-propagating direction with respect to said signals.
- 25. A method according to claim 22, wherein said energy provided at one or more of said one or more secondary seed wavelengths λs1 . . . λsn and said energy provided at said one or more primary pump source wavelengths λp1 . . . λpl are launched into said transmission fiber from more than one launch location simultaneously, in co-propagating and/or counter-propagating directions with respect to said signals.
- 26. A method according to one of claims 22 to 25, wherein said launched energy at one or more of said one or more secondary seed wavelengths is provided by returning into the transmission fiber, by reflection means, amplified spontaneous Raman scattered radiation, originating in the fiber due to the presence of high power at a wavelength one Raman shift below the particular seed wavelength.
- 27. A method according to one of claims 22 to 26, wherein the power and/or the wavelengths of the primary pump radiation and/or the secondary seed radiation is (are) selectively altered to dynamically control the Raman gain and/or the gain spectral profile, to compensate for gain changes and/or gain tilt resulting from changes in the powers and/or wavelengths of the transmitted signal channels.
- 28. A method of applying dynamic control of the magnitude and/or the spectral profile of the distributed Raman gain at, or near, a signal launch terminal of an optical fiber telecommunications span in which counter-propagating distributed Raman preamplification is being applied at a receiving or repeater end of the span or at some intermediate point along the span, resulting in residual energy at final direct-pumping wavelengths λƒ1 . . . λƒk nearing said signal launch terminal, said method comprising the steps of:
(a) providing one or more moderate-power secondary pump sources at wavelengths λss1 . . . λssj shorter, by an amount corresponding to the Raman shift in the transmission fiber, than the pump wavelengths λƒ1 . . . λƒk ultimately required to directly produce distributed Raman gain for the signal wavelengths; (b) using coupling means to input radiation from the secondary pump sources at the λss1 . . . λssj into said transmission fiber at the signal launch terminal of the span or at an intermediate point near the launch terminal, to travel in a co-propagating direction with respect to the signals; (c) selectively altering the power and/or wavelength of the secondary pump sources at the λss1 . . . λssj to dynamically control the Raman gain experienced by said residual incoming radiation at the final pump wavelengths λƒ1 . . . λƒk, and thus dynamically control the magnitude and/or the spectral profile of the resulting additional Raman gain experienced by the signals being launched; and wherein, the secondary pump wavelengths λss1 . . . λssj is (are) shorter than the wavelengths λƒ1 . . . λƒk by an amount corresponding to the Raman shift in the transmission fiber.
Parent Case Info
[0001] This application claims priority of US provisional patent application Ser. No. 60/217,104, filed Jul. 10, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60217104 |
Jul 2000 |
US |