Claims
- 1. A method for generating a broadband spectral continuum from a higher-order soliton pulse, the method comprising the steps of:
compressing the higher-order soliton pulse in a temporal domain through soliton-effect compression to obtain a compressed soliton pulse having a spectrum; and breaking up the compressed soliton pulse to shape the spectrum of the compressed soliton pulse through higher order dispersion effects and self-phase modulation to obtain the broadband spectral continuum.
- 2. The method as claimed in claim 1 wherein the step of compressing includes the step of launching the higher-order soliton pulse into a first end of an anomalous dispersion fiber including at least one pulse compression stage having a length based on the order of the soliton pulse and a spectral shaping stage.
- 3. The method as claimed in claim 2 wherein the step of breaking up is performed adjacent a second end of the anomalous dispersion fiber in the spectral shaping stage.
- 4. The method as claimed in claim 3 wherein the spectral shaping stage is a dispersion-shifted optical fiber section of the anomalous dispersion fiber.
- 5. The method as claimed in claim 2 wherein the step of compressing is performed in multiple pulse compression stages of the anomalous dispersion fiber.
- 6. The method as claimed in claim 3 wherein the higher order dispersion effects include third order dispersion effects.
- 7. The method as claimed in claim 6 wherein the shape of the broadband spectral continuum is based primarily on the sign and magnitude of third order dispersion of the spectral shaping stage adjacent the second end.
- 8. The method as claimed in claim 7 wherein the shape of the broadband spectral continuum is also based on pulse width of the compressed soliton pulse immediately prior to the step of breaking up.
- 9. The method as claimed in claim 8 wherein the dispersion effects include second and third order dispersion effects, and wherein the magnitude of the second order dispersion and the magnitude of the third order dispersion normalized by the pulse width have substantially the same order of magnitude adjacent the second end of the anomalous dispersion fiber in the spectral shaping stage.
- 10. The method as claimed in claim 1 wherein the spectral continuum is greater than 10 nm wide.
- 11. A system for generating broadband spectral continuum from a higher-order soliton pulse, the system comprising:
at least one pulse compression stage of anomalous dispersion fiber having a length based on the order of the soliton pulse for compressing the soliton pulse through soliton-effect compression to obtain a compressed soliton pulse having a spectrum; and a spectral shaping stage of the anomalous dispersion fiber optically coupled to the at least one pulse compression stage of anomalous dispersion fiber for breaking up the compressed soliton pulse adjacent an output end of the fiber to shape the spectrum of the compressed soliton pulse through higher order dispersion effects and self-phase modulation to obtain the broadband spectral continuum.
- 12. The system as claimed in claim 11 wherein the at least one pulse compression stage of anomalous dispersion fiber has a dispersion which is relatively constant therein.
- 13. The system as claimed in claim 11 wherein the anomalous dispersion fiber has a second pulse compression stage less than 100 meters in length.
- 14. The system as claimed in claim 13 wherein the second pulse compression stage is less than 10 meters in length.
- 15. The system as claimed in claim 11 wherein the dispersion effects include third order dispersions having a sign and a magnitude.
- 16. The system as claimed in claim 15 wherein the third order dispersions have a positive sign.
- 17. The system as claimed in claim 15 wherein the third order dispersions have a negative sign.
- 18. The system as claimed in claim 11 further comprising a plurality of pulse compression stages of anomalous dispersion fiber for compressing the soliton pulse through soliton-effect compression to obtain the compressed soliton pulse.
- 19. The system as claimed in claim 11 wherein the length of the at least one pulse compression stage of anomalous dispersion fiber is based on a minimal width of the compressed soliton pulse.
- 20. A system for generating pulses substantially simultaneously on multiple channels at multiple wavelengths and at repetition rates of at least 1 Gb/s per wavelength channel, the system comprising:
a soliton pulse generator including a single laser for generating soliton pulses; an optical fiber including at least one pulse compression stage and a spectral shaping stage, the at least one pulse compression stage receiving the soliton pulses at a first end of the fiber and the spectral shaping stage generating a broadband spectral continuum within the fiber and providing the broadband spectral continuum at a second end of the fiber; and a plurality of filters coupled to the second end of the fiber for carving broadband coherent outputs from the broadband spectral continuum to obtain pulses having multiple wavelengths and repetition rates of at least 1 Gb/s per wavelength channel.
- 21. The system as claimed in claim 20 wherein the single laser is a single mode-locked laser.
- 22. The system as claimed in claim 21 wherein the single mode-locked laser is a mode-locked erbium-doped fiber laser.
- 23. The system as claimed in claim 20 wherein the single laser is a single continuous-wave (CW) laser adapted to be externally modulated.
- 24. The system as claimed in claim 21 wherein the single mode-locked laser is a mode-locked semiconductor laser.
- 25. The system as claimed in claim 20 wherein the plurality of filters comprise a plurality of passive filters and wherein the passive filters set wavelength stability and the pulses' spectral and temporal widths.
- 26. The system as claimed in claim 20 wherein the length of the spectral shaping stage is less than 10 meters.
- 27. The system as claimed in claim 20 wherein the spectral shaping stage is a dispersion-shifted fiber.
- 28. The system as claimed in claim 20 wherein the optical fiber includes a polarization preserving fiber.
- 29. The system as claimed in claim 20 wherein the spectral continuum is greater than 10 nm wide.
- 30. The system as claimed in claim 20 wherein the soliton pulse generator includes a polarization controller for aligning polarization of the soliton pulses with a polarization eigenmode of the at least one stage.
- 31. The system as claimed in claim 20 wherein the soliton pulse generator includes a fiber amplifier for amplifying the soliton pulses.
- 32. The system as claimed in claim 20 wherein the soliton pulse generator includes a semiconductor optical amplifier for amplifying the soliton pulses.
- 33. The system as claimed in claim 31 wherein the fiber amplifier is an erbium-doped fiber amplifier.
- 34. The system as claimed in claim 20 wherein the optical fiber includes a high-nonlinearity (Hi-NL) fiber.
- 35. A method of making an anomalous dispersion fiber including at least one pulse compression stage for generating a compressed soliton pulse having incident pulse energy, Po, and pulse width, τ, from a higher-order, N, soliton pulse also having incident pulse energy, Po, and pulse width, τ, the fiber also including a spectral shaping stage for generating a broadband spectral continuum from the compressed soliton pulse, the method comprising the steps of:
determining compression parameters including dispersion, D, and length, L, for the at least one pulse compression stage based on Po and τ of the higher-order soliton pulse; determining shaping parameters including D, L and dD/dλ for the spectral shaping stage based on τ, Po and chirp, C, of the compressed soliton pulse; providing the at least one pulse compression stage having the compression parameters and the spectral shaping stage having the shaping parameters; and optically coupling the at least one pulse compression stage and the spectral shaping stage together to obtain the anomalous dispersion fiber.
- 36. The method as claimed in claim 35 wherein 300 fsec ≦τ of the higher-order soliton pulse ≦3 psec.
- 37. The method as claimed in claim 35 wherein Po of the higher-order soliton pulse ˜1.5≦N≦4.
- 38. The method as claimed in claim 35 wherein D of the at least one pulse compression stage is ≧2 ps/nm-km.
- 39. The method as claimed in claim 35 wherein L of the at least one pulse compression stage is 2-100 m.
- 40. The method as claimed in claim 35 wherein τ of the compressed soliton pulse ≦300 fsec.
- 41. The method as claimed in claim 35 wherein Po of the compressed soliton pulse ˜1.5≦N≦4.
- 42. The method as claimed in claim 35 wherein C is linear and 1≦C≦1.
- 43. The method as claimed in claim 35 wherein D of the spectral shaping stage is 0.2-2 ps/nm-km.
- 44. The method as claimed in claim 35 wherein dD/dλ is ±0.01-0.07 ps/nm2-km.
- 45. The method as claimed in claim 35 wherein L of the spectral shaping stage is 0.3-100 m.
- 46. The invention as claimed in claims 2, 11, or 35 wherein the fiber includes a high nonlinearity fiber.
- 47. The invention as claimed in claims 2, 11, or 35 wherein the fiber includes a polarization preserving fiber.
- 48. The invention as claimed in claims 2, 11, 20, or 35 wherein the fiber includes a dispersion decreasing fiber.
GOVERNMENT RIGHTS
[0001] This invention was made with government support under AFOSR Grant F30602-97-1-0202. The government has certain rights in the invention.
Divisions (1)
|
Number |
Date |
Country |
| Parent |
09253852 |
Feb 1999 |
US |
| Child |
10234810 |
Sep 2002 |
US |