Claims
- 1. A variable wavelength attenuator for spectral grooming of light having a plurality of spectral bands received at an input port, the variable wavelength attenuator comprising:
an optical train disposed between the input port and an output port providing optical paths for routing the spectral bands, the optical train including a dispersive element disposed to intercept light traveling from the input port; and an attenuation mechanism having a plurality of configurable attenuation elements, wherein each spectral band is attenuated in accordance with a state of one of such configurable attenuation elements.
- 2. The variable wavelength attenuator recited in claim 1 wherein the output port comprises a plurality of output ports and each spectral band is routed to one of the output ports depending on the state of the one of such configurable attenuation elements.
- 3. The variable wavelength attenuator recited in claim 1 wherein the input port is located at the end of an input fiber.
- 4. The variable wavelength attenuator recited in claim 1 wherein the at least one output port is located at the end of an output fiber.
- 5. The variable wavelength attenuator recited in claim 1 wherein the attenuation mechanism has a configuration that directs all of the spectral bands to the output port.
- 6. The variable wavelength attenuator recited in claim 1 wherein each such configurable attenuation element comprises a moveable micromirror and the state of such configurable attenuation element is defined by a position of the moveable micromirror.
- 7. The variable wavelength attenuator recited in claim 6 wherein the moveable micromirror is configured to adopt a plurality of discrete positions.
- 8. The variable wavelength attenuator recited in claim 6 wherein the moveable micromirror is configured to adopt a continuum of positions.
- 9. The variable wavelength attenuator recited in claim 6 wherein at least one moveable micromirror comprises a tiltable micromirror.
- 10. The variable wavelength attenuator recited in claim 6 wherein at least one moveable micromirror comprises a translatable micromirror.
- 11. The variable wavelength attenuator recited in claim 6 wherein the plurality of configurable attenuation elements further includes a common reflective surface disposed to be encountered by spectral bands that encounter different moveable micromirrors.
- 12. The variable wavelength attenuator recited in claim 11 wherein the common reflective surface comprises a plurality of common reflective surfaces.
- 13. The variable wavelength attenuator recited in claim 11 wherein the common reflective surface includes a plurality of portions having different reflectivity, with different portions being disposed to be encountered by different spectral bands depending on the respective states of the configurable attenuation elements.
- 14. The variable wavelength attenuator recited in claim 1 wherein the optical train is configured so that light encounters the dispersive element twice before reaching the at least one output port.
- 15. The variable wavelength attenuator recited in claim 1 wherein the optical train comprises a free-space optical train.
- 16. The variable wavelength attenuator recited in claim 1 wherein the dispersion element comprises a grating and the optical train includes optical power incorporated into the grating.
- 17. The variable wavelength attenuator recited in claim 1 wherein:
the optical train includes a lens; the dispersive element comprises a reflection grating; light coming from the input port is collimated by the lens and reflected from the reflection grating as a plurality of angularly separated beams corresponding to the spectral bands; and the angularly separated beams are focused by the lens on respective ones of the configurable attenuation elements.
- 18. The variable wavelength attenuator recited in claim 17 wherein the lens comprises a spherical lens.
- 19. The variable wavelength attenuator recited in claim 17 wherein the lens comprises a cylindrical lens.
- 20. The variable wavelength attenuator recited in claim 1 wherein:
the optical train includes a first lens and a second lens; the dispersive element comprises a transmissive grating; light coming from the input port is collimated by the first lens and transmitted through the grating as a plurality of angularly separated beams corresponding to the spectral bands; and the angularly separated beams are focused by the second lens on respective ones of the configurable attenuation elements.
- 21. The variable wavelength attenuator recited in claim 20 wherein the first and second lenses comprise spherical lenses.
- 22. The variable wavelength attenuator recited in claim 20 wherein the first and second lenses comprise cylindrical lenses.
- 23. The variable wavelength attenuator recited in claim 1 wherein:
the optical train includes a concave reflector; the dispersive element comprises a reflection grating; light coming from the input port is collimated by the concave reflector and reflected from the reflection grating as a plurality of angularly separated beams corresponding to the spectral bands; and the angularly separated beams are focused by the concave reflector on respective ones of the configurable attenuation elements.
- 24. A method for spectral grooming of light having a plurality of spectral bands, the method comprising:
collimating the light; dispersing the light as a plurality of angularly separated beams corresponding to the spectral bands; independently attenuating each of the spectral bands; collimating the attenuated spectral bands; and removing the angular separation between the spectral bands to form a beam.
- 25. The method recited in claim 24 wherein the beam includes the plurality of spectral bands, the method further comprising focusing the beam on a single output port.
- 26. The method recited in claim 24 wherein the beam comprises a plurality of beams each including at least one of the plurality of spectral bands, the method further comprising focusing the plurality of beams on a plurality of output ports.
- 27. The method recited in claim 24 wherein independently attenuating each of the spectral bands comprises reflecting each such spectral band from a moveable micromirror, an attenuation for that spectral band being defined by a position of the moveable micromirror.
- 28. The method recited in claim 27 wherein the position is one of a plurality of positions defined by a rotational degree of freedom for the moveable micromirror.
- 29. The method recited in claim 27 wherein the position is one of a plurality of positions defined by a translational degree of freedom for the moveable micromirror.
- 30. The method recited in claim 27 wherein the position is one of a plurality of discrete positions for the moveable micromirror.
- 31. The method recited in claim 27 wherein the position is one of a continuum of positions for the moveable micromirror.
- 32. The method recited in claim 24 wherein independently attenuating each of the spectral bands comprises reflecting such each spectral band from a respective one of a plurality of surface portions having different reflectivities.
- 33. A variable wavelength attenuator for spectral grooming of light having a plurality of spectral bands, the variable wavelength attenuator comprising:
means for collimating the light; means for dispersing the light as a plurality of angularly separated beams corresponding to the spectral bands; means for independently attenuating each of the spectral bands; means for collimating the attenuated spectral bands; and means for removing the angular separation between the spectral bands to form the beam.
- 34. The variable wavelength attenuator recited in claim 33 wherein the beam includes the plurality of spectral bands, the variable wavelength attenuator further comprising means for focusing the beam on a single output port.
- 35. The variable wavelength attenuator recited in claim 33 wherein the beam comprises a plurality of beams each including at least one of the plurality of spectral bands, the variable wavelength attenuator further comprising means for focusing the plurality of beams on a plurality of output ports.
- 36. The variable wavelength attenuator recited in claim 33 wherein the means for independently attenuating each of the spectral bands comprises a plurality of moveable micromirrors, an attenuation for each spectral band being defined by a position of one of the plurality of moveable micromirrors.
- 37. The variable wavelength attenuator recited in claim 36 wherein the position is one of a plurality of positions defined by a rotational degree of freedom for the one of the plurality of moveable micromirror means.
- 38. The variable wavelength attenuator recited in claim 36 wherein the position is one of a plurality of positions defined by a translational degree of freedom for the one of the plurality of moveable micromirror means.
- 39. The variable wavelength attenuator recited in claim 36 wherein the position is one of a plurality of discrete positions for the one of the plurality of moveable micromirror means.
- 40. The variable wavelength attenuator recited in claim 36 wherein the position is one of a continuum of positions for the moveable micromirror means.
- 41. The variable wavelength attenuator recited in claim 33 wherein the means for independently attenuating each of the spectral bands comprises means for reflecting such each spectral band from a respective one of a plurality of surface portions having different reflectivities.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a non-provisional of and claims priority to Appl. No. 60/363,724 entitled “VARIABLE WAVELENGTH ATTENUATOR FOR SPECTRAL GROOMING USING MICROMIRROR ROUTING” filed Mar. 11, 2002, by Samuel P. Weaver, the entire disclosure of which is incorporated herein by reference for all purposes.
Provisional Applications (1)
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Number |
Date |
Country |
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60363724 |
Mar 2002 |
US |