Claims
- 1. A higher-order dispersion compensator for tuning a polarization controlled signal having a first polarization mode dispersion component, a second order polarization mode dispersion component, and a variable chromatic dispersion component, the compensator comprising:
a) a first tuning element that adjusts the first order polarization mode dispersion component of the polarization controlled signal; and b) a second tuning element that adjusts the second order polarization mode dispersion component and the variable chromatic dispersion component of the polarization controlled signal.
- 2. The compensator of claim 1, the first tuning element comprising a differential higher-order delay line including:
a) a polarization beam splitter coupled to receive the polarization controlled signal, where the polarization beam splitter splits the polarization controlled signal into a first polarization component and a second orthogonal polarization component; b) a first waveguide optically coupled to receive the first polarization signal, the first waveguide having a first linearly chirped grating tuned to reflect the first polarization component and having a first reference reflection point; c) a second waveguide optically coupled to receive the second polarization signal, the second waveguide having a second linearly chirped grating tuned to reflect the second polarization component and having a second reference reflection point; and d) a first tuning mechanism that tunes one of the gratings.
- 3. The compensator of claim 2, the second tuning element comprising a third waveguide having a third non-linearly chirped Bragg grating and a second tuning mechanism that tunes the third grating.
- 4. The compensator of claim 1, the second tuning element comprising a third waveguide having a third non-linearly chirped Bragg grating and a second tuning mechanism that tunes the third grating.
- 5. The compensator of claim 4, the range of chirp values in the third non-linearly chirped Bragg grating determining the relative range of variable chromatic dispersion compensation.
- 6. The compensator of claim 5, the polarization controlled signal further comprising a static chromatic dispersion component comprising an average chirp rate of the first and second gratings that corresponds to the amount of fixed chromatic dispersion to be compensated.
- 7. The compensator of claim 1, wherein the compensator is an adaptive compensator further including a signal analyzer, which provides control signals to at least one of the tuning mechanisms.
- 8. The dispersion compensator of claim 2, wherein the waveguides are optical fibers.
- 9. The dispersion compensator of claim 2, wherein the waveguides are optical single-mode polarization-maintaining fibers.
- 10. The dispersion compensator of claim 2, wherein the waveguides are optical single-mode polarizing fibers.
- 11. The dispersion compensator of claim 2, wherein the waveguides are shaped optical fibers.
- 12. The dispersion compensator of claim 2, where the gratings are fiber Bragg gratings.
- 13. The dispersion compensator of claim 1, where the dispersion compensator is at least partially integrated into an integrated optical chip.
- 14. The dispersion compensator of claim 2, wherein the waveguides are channel waveguides in an integrated optical chip.
- 15. The dispersion compensator of claim 14, where the integrated optical chip is a lithium niobate chip.
- 16. The dispersion compensator of claim 2, wherein the splitter is a splitter/combiner element that also recombines the reflected first and second polarization components.
- 17. The dispersion compensator of claim 2, wherein the first grating and the second grating both have substantially same reflection profiles and substantially same chirp rates; and the first and second reference reflection points are at substantially a same optical path length.
- 18. The dispersion compensator of claim 2, where prior to adjustment by the tuning mechanism, the first reflection point of the first grating is at a shorter optical path length from the split point than the second reflection point.
- 19. The dispersion compensator of claim 2, wherein the tuning mechanism mechanically stresses the gratings.
- 20. The dispersion compensator of claim 2, the tuning mechanism comprising mechanisms that tune the gratings acoustically, thermally, electro-optically, or mechanically.
- 21. The dispersion compensator of claim 2, wherein the first and second gratings measure at least one meter in length.
- 22. The dispersion compensator of claim 3, further comprising a four-port circulator, the circulator having an input port optically coupled to receive the polarization control signal, a first recirculation port optically coupled to transmit the controller output signal to the differential polarization delay line and to receive the delay line output, a second recirculation port optically coupled to transmit the delay line output signal to the second tuning element and to a second tuning element output signal, and an output port optically coupled to transmit a final output signal.
- 23. A higher order compensator for tuning a signal of arbitrary polarization, the compensator comprising
a) a polarization controller that converts incoming light of an arbitrary polarization to a polarization controlled signal having a desired state of polarization; and b) the compensator of claim 1.
- 24. An adaptive higher-order dispersion compensator comprising:
a) a polarization controller that converts incoming light of an arbitrary polarization to a polarization controlled signal having a desired state of polarization; b) a differential higher-order delay line optically coupled to receive the polarization controlled signal, the delay line including:
i) a polarization beam splitter coupled to receive the polarization controlled signal, where the polarization beam splitter splits the polarization controlled signal into a first polarization signal and a second orthogonal polarization signal, ii) a first optical fiber linearly chirped Bragg grating coupled to receive the first polarization signal, iii) a second optical fiber linearly chirped Bragg grating coupled to receive the second polarization signal, iv) a first tuning mechanism that tunes the first grating independently from the second grating; v) a third optical fiber non-linearly chirped Bragg grating coupled to receive the polarization controlled signal; vi) a second tuning mechanism that tunes the third grating; and vii) an output signal analyzer optically coupled to sample a resulting output, wherein the analyzer can tune the polarization controller and the tuning mechanisms.
- 25. A higher-order dispersion compensator for a signal having a first polarization mode dispersion component, a second order polarization mode dispersion component, and a variable chromatic dispersion component, the compensator comprising:
a) a first order polarization mode dispersion compensation means; b) a second order polarization mode dispersion compensation means; and c) a variable chromatic dispersion compensation means; d) wherein the signal is processed through each compensation means.
- 26. The compensator of claim 25, further comprising a fixed chromatic dispersion compensation means.
- 27. An adaptive higher-order dispersion compensator comprising:
a) a polarization controller that converts incoming light of an arbitrary polarization to a controlled polarization output signal having a desired state of polarization; b) a differential delay line optically coupled to receive the controlled polarization output signal, the delay line including:
i) a polarization beam splitter element coupled to receive the controlled polarization output signal, where the controlled polarization output signal is split into a first polarization signal and a second orthogonal polarization signal; ii) a first waveguide optically coupled to receive the first polarization signal, the first waveguide having a first linearly chirped grating tuned to reflect the first polarization signal and having a first reference reflection point; iii) a second waveguide optically coupled to receive the second polarization signal, the second waveguide having a second linearly chirped grating tuned to reflect the second polarization signal and having a second reference reflection point; iv) a tuning mechanism coupled to the second grating, wherein the tuning mechanism variably adjust the second reference reflection point with respect to the first reference reflection point; and v) a combiner element that recombines the two reflected orthogonal polarization signals into a delay line output; c) a non-linearly chirped grating optically coupled to receive the delay line output which can be tuned to impart a variable higher-order dispersion compensation; d) a signal quality analyzer optically coupled to sample the delay line output, wherein the analyzer evaluates the quality of the delay line output signal and provides a control signal to the polarization controller, the differential delay line, and the non-linearly chirped grating.
RELATED APPLICATIONS
[0001] The present application is related to and claims priority from the co-pending, commonly assigned U.S. applications entitled, “System for Polarization Mode Dispersion Compensation”, USPTO serial No. 10/036,987, and “Method for Polarization Mode Dispersion Compensation”, USPTO serial No. 10/037,024, both of which are incorporated by reference. This application also is related to and claims priority from provisional application “Method And System For Higher Order Dispersion Compensation”, USPTO serial No. 60/344,965, which also is hereby incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60344965 |
Dec 2001 |
US |