Claims
- 1. A device, comprising:a plurality of dynamic gratings cascaded in an optical path, each dynamic grating including a fiber having a fiber core and a fiber cladding layer surrounding said fiber core, and a plurality of grating trenches formed in said fiber cladding layer and filled with a dielectric material that is different from said fiber cladding layer, wherein said dielectric material is operable to change a refractive index in response to a control signal to exhibit a first refractive index substantially equal to a refractive index of said fiber cladding layer when said control signal is at a first value and to exhibit a second, different refractive index when said control signal is at a second value; a control unit to produce said control signal to each grating; and an optical detector coupled to receive at least a portion of an optical signal with a plurality of wavelength-division-multiplexed (WDM) channels passing through said plurality of dynamic gratings and operable to measure amplitudes of said WDM channels, wherein said control unit is coupled to receive a detector output representing said measured amplitudes and is operable to control said plurality of dynamic gratings to substantially equalize amplitudes of said WDM channels in response to said measured amplitudes.
- 2. The device as in claim 1, wherein said grating trenches have a chirped grating period.
- 3. The device as in claim 1, wherein said dielectric material in said grating trenches includes an electro-optic material.
- 4. The device as in claim 1, wherein said dielectric material in said grating trenches includes a thermal-optical material.
- 5. The device as in claim 1, wherein said fiber is birefringent to support at least two different polarization modes, and wherein said grating trenches are configured to cause optical coupling between said two different polarization modes when said control signal is at said second value.
- 6. The device as in claim 1, further comprising a Faraday reflector positioned in said optical path at one side of said plurality of dynamic gratings to receive an optical signal passing through said plurality of dynamic gratings, said Faraday reflector operable to reflect said optical signal back to said plurality of dynamic gratings as a reflected optical signal by making a polarization of said reflected optical signal substantially orthogonal to a polarization of said optical signal prior to reflection.
- 7. The device as in claim 6, further comprising an optical circulator positioned in said optical path on an opposite side of said plurality of dynamic gratings to direct said optical signal into said plurality of dynamic gratings and to direct said reflected optical signal from said plurality of dynamic gratings to an output optical path.
- 8. The device as in claim 1, wherein said control unit is operable to individually controls said plurality of dynamic gratings to superimpose data of different wavelength-division-multiplexed (WDM) channels in optical carriers at different WDM wavelengths, respectively.
- 9. The device as in claim 8, further comprising a light source operable to produce said optical carriers at said different WDM wavelengths.
- 10. The device as in claim 9, wherein said light source includes a mode-locked laser.
- 11. A device, comprising:a plurality of dynamic gratings cascaded in an optical path, each dynamic grating including a waveguide element and a cladding layer over one side of or surrounding said waveguide element, and a plurality of grating trenches formed in said cladding layer and filled with a dielectric material that is different from said cladding layer, wherein said dielectric material is operable to change a refractive index in response to a control signal to exhibit a first refractive index substantially equal to a refractive index of said cladding layer when said control signal is at a first value and to exhibit a second, different refractive index when said control signal is at a second value; a control unit to produce said control signal to each grating; and an optical detector coupled to receive at least a portion of an optical signal with a plurality of wavelength-division-multiplexed (WDM) channels passing through said plurality of dynamic gratings and operable to measure amplitudes of said WDM channels, wherein said control unit is coupled to receive a detector output representing said measured amplitudes and is operable to control said plurality of dynamic gratings to substantially equalize amplitudes of said WDM channels in response to said measured amplitudes.
- 12. The device as in claim 11, wherein said grating trenches have a chirped grating period.
- 13. The device as in claim 11, wherein said dielectric material in said grating trenches includes an electro-optic material.
- 14. The device as in claim 11, wherein said dielectric material in said grating trenches includes a thermal-optical material.
- 15. The device as in claim 11, wherein said waveguide element is birefringent to support at least two different polarization modes, and wherein said grating trenches are configured to cause optical coupling between said two different polarization modes when said control signal is at said second value.
- 16. A method, comprising:directing light into a waveguide which has a cladding layer formed with a plurality of grating trenches, wherein said grating trenches are filled with a dielectric material that is different from said cladding layer, said dielectric material responsive to a control signal to change a refractive index to exhibit a first refractive index substantially equal to a refractive index of said cladding layer when said control signal is at a first value and to exhibit a second, different refractive index when said control signal is at a second value; and causing said control signal to be adjusted from said first value to said second value to couple at least a portion of light guided in said waveguide at a wavelength that satisfies a Bragg condition to control an amplitude of said light.
- 17. A method, comprising:causing a plurality of grating trenches to be formed in a fiber cladding layer of a fiber, wherein said grating trenches are filled with a dielectric material that is different from said fiber cladding layer, said dielectric material responsive to a control signal to change a refractive index to exhibit a first refractive index substantially equal to a refractive index of said fiber cladding layer when said control signal is at a first value and to exhibit a second, different refractive index when said control signal is at a second value; and causing said control signal to be adjusted from said first value to said second value to couple at least a portion of light guided in said fiber at a wavelength that satisfies a Bragg condition to control an amplitude of said light.
- 18. The method as in claim 17, further comprising using a thermal-optical material as said dielectric material in said grating trenches.
- 19. The method as in claim 17, further comprising causing said control signal to be adjusted between said first value and said second value to modulate said light.
- 20. The method as in claim 17, further comprising causing said fiber to be birefringent to support at least two different polarization modes, and wherein said grating trenches are configured to cause optical coupling between said two different polarization modes when said control signal is at said second value.
- 21. The method as in claim 18, further comprising using an electro-optic material as said dielectric material in said grating trenches.
CROSS REFERENCE TO RELATED APPLICATIONS
This application claims the benefit of U.S. Provisional Application No. 60/269,601 filed Feb. 15, 2001, which is incorporated herein by reference.
US Referenced Citations (5)
| Number |
Name |
Date |
Kind |
|
5611004 |
Chang et al. |
Mar 1997 |
A |
|
5832148 |
Yariv |
Nov 1998 |
A |
|
6215928 |
Friesem et al. |
Apr 2001 |
B1 |
|
6330383 |
Cai et al. |
Dec 2001 |
B1 |
|
6389199 |
Eldada et al. |
May 2002 |
B1 |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/269601 |
Feb 2001 |
US |