Claims
- 1. A method comprising the steps of:
inputting an optical signal into an optical waveguide structure for providing a nonlinear effect; generating chirp in said optical signal by said nonlinear effect; and supplying an output optical signal output from said optical waveguide structure to an optical bandpass filter having a pass band including a wavelength different from the wavelength of said optical signal to extract components except a component in which said chirp is small from said output optical signal.
- 2. A method according to claim 1, wherein said optical waveguide structure comprises an optical fiber for providing normal dispersion.
- 3. A method according to claim 1, wherein said optical waveguide structure comprises a dispersion flattened fiber having a dispersion independent of wavelength.
- 4. A method according to claim 1, further comprising the step of optically amplifying said optical signal to be input into said optical waveguide structure so that a required amount of chirp is obtained.
- 5. A method according to claim 1, wherein said optical signal comprises a clock pulse extracted by an optical timing recovery circuit.
- 6. A method according to claim 1, wherein said optical bandpass filter has a plurality of pass bands.
- 7. A device comprising:
an optical waveguide structure for providing a nonlinear optical effect so that chirp is generated in an optical signal input; and an optical bandpass filter for accepting an output optical signal output from said optical waveguide structure to extract components except a component in which said chirp is small from said output optical signal; said optical bandpass filter having a pass band including a wavelength different from the wavelength of said optical signal.
- 8. A device according to claim 7, wherein said optical waveguide structure comprises an optical fiber for providing normal dispersion.
- 9. A device according to claim 7, wherein said optical waveguide structure comprises a dispersion flattened fiber having a dispersion independent of wavelength.
- 10. A device according to claim 7, further comprising an optical amplifier for optically amplifying said optical signal to be input into said optical waveguide structure so that a required amount of chirp is obtained.
- 11. A device according to claim 7, further comprising an optical timing recovery circuit for extracting a clock pulse as said optical signal.
- 12. A device according to claim 7, wherein said optical bandpass filter has a plurality of pass bands.
- 13. A system comprising:
a first optical fiber transmission line for transmitting an optical signal; an optical repeater for accepting said optical signal transmitted by said first optical fiber transmission line; and a second optical fiber transmission line for transmitting an optical signal output from said optical repeater; said optical repeater comprising:
an optical waveguide structure for providing a nonlinear optical effect so that chirp is generated in said optical signal input; and an optical bandpass filter for accepting an output optical signal output from said optical waveguide structure to extract components except a component in which said chirp is small from said output optical signal; said optical bandpass filter having a pass band including a wavelength different from the wavelength of said optical signal.
- 14. A device comprising:
an optical branch for branching an input optical signal into a first optical signal and a second optical signal; a waveform shaper for accepting said first optical signal; a timing recovery circuit for generating a clock pulse according to said second optical signal; and an optical AND circuit for accepting an optical signal output from said waveform shaper and said clock pulse output from said timing recovery circuit; said timing recovery circuit comprising:
an optical waveguide structure for providing a nonlinear optical effect so that chirp is generated in said second optical signal input; and an optical bandpass filter for accepting an output optical signal output from said optical waveguide structure to extract components except a component in which said chirp is small from said output optical signal; said optical bandpass filter having a pass band including a wavelength different from the wavelength of said optical signal.
- 15. A device according to claim 14, wherein said waveform shaper comprises:
an optical waveguide structure for providing a nonlinear optical effect so that chirp is generated in said first optical signal input; and an optical bandpass filter for accepting an output optical signal output from said optical waveguide structure to extract components except a component in which said chirp is small from said output optical signal; said optical bandpass filter having a pass band including a wavelength different from the wavelength of said optical signal.
- 16. A method comprising the steps of:
generating a clock pulse having a single wavelength according to input signal light; supplying said clock pulse to an optical waveguide structure for providing a nonlinear optical effect to broaden the spectrum of said clock pulse; and supplying said clock pulse spectrally broadened to an optical filter having a plurality of pass bands to generate a plurality of clock pulses having a plurality of wavelengths.
- 17. A method according to claim 16, further comprising the step of amplifying said clock pulse to be supplied to said optical waveguide structure.
- 18. A method according to claim 16, wherein said optical waveguide structure comprises an optical fiber.
- 19. A method according to claim 18, wherein said optical fiber provides any one of normal dispersion, anomalous dispersion, and zero dispersion.
- 20. A device comprising:
a clock recovery circuit for generating a clock pulse having a single wavelength according to input signal light; an optical waveguide structure for providing a nonlinear optical effect to broaden the spectrum of said clock pulse supplied; and an optical filter having a plurality of pass bands, for accepting said clock pulse spectrally broadened to generate a plurality of clock pulses having a plurality of wavelengths.
- 21. A device according to claim 20, further comprising an optical amplifier for amplifying said clock pulse to be supplied to said optical waveguide structure.
- 22. A device according to claim 20, wherein said optical waveguide structure comprises an optical fiber.
- 23. A device according to claim 22, wherein said optical fiber provides any one of normal dispersion, anomalous dispersion, and zero dispersion.
- 24. A device comprising:
an optical branch for branching WDM signal light obtained by wavelength division multiplexing a plurality of optical signals having different wavelengths into first WDM signal light and second WDM signal light; an optical demultiplexer having an input port for inputting said first WDM signal light and a plurality of output ports for outputting a plurality of optical signals having different wavelengths; a multiwavelength clock generator for receiving said second WDM signal light to generate a plurality of clock pulses having a plurality of wavelengths; and a plurality of waveform shapers connected to said plurality of output ports of said optical demultiplexer for performing waveform shaping of said plurality of optical signals according to said plurality of clock pulses; said multiwavelength clock generator comprising: a clock recovery circuit for generating a clock pulse having a single wavelength according to said second WDM signal light; an optical waveguide structure for providing a nonlinear optical effect to broaden the spectrum of said clock pulse supplied; and an optical filter having a plurality of pass bands, for accepting said clock pulse spectrally broadened to generate said plurality of clock pulses having said plurality of wavelengths.
- 25. A device according to claim 24, further comprising an optical multiplexer for wavelength division multiplexing said plurality of optical signals waveform-shaped by said plurality of waveform shapers.
- 26. A device according to claim 24, wherein each of said plurality of waveform shapers comprises a nonlinear loop mirror.
- 27. A device comprising:
an optical branch for branching WDM signal light obtained by wavelength division multiplexing a plurality of optical signals having different wavelengths into first WDM signal light and second WDM signal light; a first converter for converting said first WDM signal light into a time division multiplexed signal; a multiwavelength clock generator for receiving said second WDM signal light to generate a plurality of clock pulses having a plurality of wavelengths; and a second converter for converting said time division multiplexed signal into WDM signal light according to said plurality of clock pulses; said multiwavelength clock generator comprising:
a clock recovery circuit for generating a clock pulse having a single wavelength according to said second WDM signal light; an optical waveguide structure for providing a nonlinear optical effect to broaden the spectrum of said clock pulse supplied; and an optical filter having a plurality of pass bands, for accepting said clock pulse spectrally broadened to generate said plurality of clock pulses having said plurality of wavelengths.
- 28. A device according to claim 27, wherein each of said first and second converters comprises a nonlinear loop mirror.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2000-264757 |
Sep 2000 |
JP |
|
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application relates to application Ser. Nos. 09/560,723, 09/571,384, 09/637,640, and 09/665,164, and which are incorporated herein by references.