Claims
- 1. An optical structure for the compensation of chromatic dispersion in a light signal having a plurality of wavelength channels, each wavelength channel having accumulated a different chromatic dispersion, said optical structure comprising:
an optical waveguide having a light propagation axis; and a Bragg grating provided in said waveguide across the light propagation axis, said Bragg grating having a plurality of grating components each associated with a limited number of said wavelength channels and having a spatially variable period chosen to compensate for the chromatic dispersion of said limited number of wavelength channels.
- 2. The optical structure according to claim 1, wherein said waveguide is an optical fiber.
- 3. The optical structure according to claim 1, wherein said Bragg grating defines a longitudinal refractive index profile in said waveguide as defined by the equation:
- 4. The optical structure according to claim 3, wherein each of said grating component is linearly chirped.
- 5. The optical structure according to claim 4, wherein the spatially variable period of each ith grating component is given by the equation:
- 6. The optical structure according to claim 3, wherein each of said grating components is non-linearly chirped.
- 7. The optical structure according to claim 3, wherein the relative phase φi of each grating component is selected in order to minimize a maximum value of the longitudinal index profile n(z) along the propagation axis.
- 8. The optical structure according to claim 3, wherein the relative phase φi of each grating component is randomly selected.
- 9. The optical structure according to claim 1, wherein said grating components are superimposed.
- 10. The optical structure according to claim 1, wherein said Bragg grating components are concatenated.
- 11. The optical structure according to claim 1, wherein the limited number of wavelength channels comprises less than 10 channels.
- 12. The optical structure according to claim 1, wherein the limited number of wavelength channels comprises a single channel.
- 13. A multi-channel dispersion compensator for the compensation of chromatic dispersion in a light signal having a plurality of wavelength channels, each wavelength channel having accumulated a different chromatic dispersion, said compensator comprising:
an optical structure comprising an optical waveguide having a light propagation axis, and a Bragg grating provided in said waveguide across the light propagation axis, said Bragg grating having a plurality of grating components each reflecting a limited number of said wavelength channels and having a spatially variable period chosen to compensate for the dispersion of said limited number of wavelength channels; and an optical coupling device coupled to the optical waveguide, said optical coupling device having an input port for receiving said light signal, an input/output port for propagating said light signal in the optical structure and receiving a reflection thereof by the Bragg grating, and an output port for outputting said reflected light signal.
- 14. A multi-channel dispersion compensator according to claim 13, where said optical coupling device is an optical circulator.
- 15. A multi-channel dispersion compensator according to claim 13, where said optical coupling device is an optical coupler.
- 16. A multi-channel dispersion compensator for the compensation of chromatic dispersion in a light signal having a plurality of wavelength channels, each wavelength channel having accumulated a different chromatic dispersion, said compensator comprising:
an optical waveguide having a light propagation axis; a plurality of optical structures provided in said waveguide across the light propagation axis, each of said optical structures comprising a Bragg grating having a plurality of grating components each associated with a limited number of said wavelength channels and having a spatially variable period chosen to compensate for the dispersion of said limited number of wavelength channels; an optical coupling device coupled to the optical waveguide, said optical coupling device having an input port for receiving said light signal, an input/output port for propagating said light signal in the optical waveguide and receiving a reflection thereof by the Bragg gratings of the optical structures, and an output port for outputting said reflected light signal.
- 17. A multi-channel dispersion compensator according to claim 16, where said optical coupling device is an optical circulator.
- 18. A multi-channel dispersion compensator according to claim 16, where said optical coupling device is an optical coupler.
- 19. A tunable dispersion compensator for the compensation of chromatic dispersion in a light signal having a plurality of wavelength channels, each wavelength channel having accumulated a different chromatic dispersion, said dispersion compensator comprising:
a pair of tunable optical structures, each comprising:
an optical waveguide having a light propagation axis; a Bragg grating provided in said waveguide across the light propagation axis, said Bragg grating having a plurality of grating components, each grating component being associated with a limited number of wavelength channels and having a characteristic spatially variable Bragg wavelength selected to compensate for a given chromatic dispersion; and tuning means for tuning the spatially variable Bragg wavelength of each of said grating components; an optical coupling assembly having an input port for receiving said light signal, a pair of input/output ports for sequentially propagating said light signal in the optical structures of said pair of optical structures and receiving a reflection thereof by the corresponding Bragg grating, and an output port for outputting said light signal after reflection by the Bragg grating of both of said optical structures.
- 20. A tunable dispersion compensator according to claim 19, wherein said tuning means of each optical structure comprise a temperature gradient inducing device applying a temperature profile on the corresponding Bragg grating.
- 21. The tunable dispersion compensator according to claim 20, wherein, for each optical structure, each of said grating component is linearly chirped, and said temperature profile is linear.
- 22. The tunable dispersion compensator according to claim 20, wherein, for each optical structure each of said grating component is linearly chirped, and said temperature profile is selected to adjust the chirp of each said grating component while maintaining their linearity.
- 23. The tunable dispersion compensator according to claim 20, wherein, said waveguide of each optical structure is an optical fiber.
- 24. The tunable dispersion compensator according to claim 23, wherein, for each optical structure, said temperature gradient inducing device comprises:
an elongated heat conductive member contacting the optical fiber along the Bragg grating; and first and second heat pumping elements contacting the heat conductive member at first and second points located on opposed side of the Bragg grating, said first and second heat conductive elements maintaining said first and second points at predetermined temperature values T1 and T2.
- 25. The tunable dispersion compensator according to claim 24, further comprising, for each optical structure, first and second temperature sensors located at said first and second points.
- 26. The tunable dispersion compensator according to claim 24, wherein, for each optical structure, the heat conductive member is a metallic rod having a longitudinal cavity therethrough, the optical fiber being inserted into said cavity.
- 27. The tunable dispersion compensator according to claim 24, wherein, for each optical structure, the temperature gradient inducing device further comprises a heat sink connected to each of said first and second heat pumping elements.
- 28. The tunable dispersion compensator according to claim 24, wherein said first and second heat pumping elements of the tuning means of each optical structure are Peltier effect thermo-electric coolers.
- 29. The tunable dispersion compensator according to claim 19, wherein the optical coupling assembly comprises a four port circulator optically coupled to the optical waveguide of each of said optical structures.
- 30. The tunable dispersion compensator according to claim 19, wherein the optical coupling assembly comprises a pair of three port circulators respectively coupled to the optical waveguide of each of said optical structures and optically coupled to each other.
RELATED APPLICATION
[0001] The present application is a Continuation in Part of U.S. application Ser. No. 10/232.106, filed on Aug. 28, 2002, itself a Continuation in Part of U.S. application Ser. No. 10/101.229, filed on Mar. 18, 2002.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60307365 |
Jul 2001 |
US |
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
10232106 |
Aug 2002 |
US |
Child |
10351583 |
Jan 2003 |
US |
Parent |
10101229 |
Mar 2002 |
US |
Child |
10232106 |
Aug 2002 |
US |