Claims
- 1. A wavelength blocker comprising:
an input port for launching an input beam of light having a plurality of wavelength channels; first dispersing means disposed for spatially separating the input beam of light into a plurality of sub-beams of light, each sub-beam of light corresponding to a different wavelength channel; an array of discrete, independently addressable elements, each independently addressable element for selectively blocking a sub-beam of light from the plurality of sub-beams; second dispersing means for receiving unblocked sub-beams of light and for producing a single multiplexed beam of light therefrom; and an output port for outputting the multiplexed beam of light, wherein the array is designed such that all unblocked sub-beams of light are passed to the output port, including light between adjacent unblocked wavelength channels.
- 2. A wavelength blocker according to claim 1, wherein the array of independently addressable elements comprises a continuous reflecting surface for reflecting light between the first and second dispersing means.
- 3. A wavelength blocker according to claim 2, wherein the first and second dispersing means comprises a same diffraction grating.
- 4. A wavelength blocker according to claim 3, wherein the array of independently addressable elements comprises a MEMS device disposed between the continuous reflecting surface and the diffraction grating.
- 5. A wavelength blocker according to claim 1, wherein the array of independently addressable elements comprises a MEMS device.
- 6. A wavelength blocker according to claim 5, wherein each addressable element comprises one of a magnetic actuator, an electrostatic actuator, a thermal actuator, and an acoustic actuator.
- 7. A wavelength blocker according to claim 5, wherein each addressable element comprises one of an edge pop-up, an in-plane pop, a curled pop-up, and a linear pop-up mechanism.
- 8. A wavelength blocker according to claim 5, wherein each addressable element includes one of an absorbing surface and a reflective surface.
- 9. A wavelength blocker according to claim 3, wherein the array of independently addressable elements comprises a polarization rotating device disposed between the continuous reflecting surface and the diffraction grating.
- 10. A wavelength blocker according to claim 9, wherein the continuous reflective surface comprises an electrode of the polarization rotating device.
- 11. A wavelength blocker according to claim 1, wherein the array of independently addressable elements comprises a polarization rotating device.
- 12. A wavelength blocker according to claim 11, wherein the polarization rotating device comprises a liquid crystal device having a continuous reflective electrode, a liquid crystal layer, and an addressable transparent electrode.
- 13. A wavelength blocker according to claim 11, wherein the polarization device is designed to not affect the polarization of the input beam of light including wavelengths between adjacent wavelength channels in the absence of an applied voltage.
- 14. A wavelength blocker according to claim 11, comprising a polarizer optically coupled to the polarization rotating device.
- 15. A wavelength blocker according to claim 1, wherein each addressable element comprises a blocking element movable between a first position where it is in a dispersion plane of the dispersive element and a second position where it is out of the dispersion plane.
- 16. A wavelength blocker according to claim 3, wherein each addressable element comprises a blocking element for coupling to the continuous reflecting surface and is movable between a first position where is destroys the reflectivity of the continuous reflective surface in a predetermined region, and a second position where it does not destroy the reflectivity of the continuous reflective surface in the predetermined region.
- 17. A wavelength blocker according to claim 16, wherein the continuous reflective surface is an internal surface of a right angle reflecting prism.
- 18. A wavelength blocker according to claim 3, wherein the continuous reflective surface is a planar mirror.
- 19. A wavelength blocker according to claim 1, comprising collimating and focussing optics for allowing each of the sub-beams of light to be essentially focussed at the array of independently addressable elements.
- 20. A wavelength blocker according to claim 19, wherein the collimating and focussing optics include at least one of a GRIN lens, a spherical mirror, a concave diffraction grating, and a pair of lenses.
- 21. A wavelength blocker according to claim 1, wherein the wavelength blocker has a free-space design.
- 22. A wavelength blocker according to claim 1, comprising a polarization diversity unit for providing polarized light to the dispersive element and the array of independently addressable elements.
- 23. A wavelength blocker according to claim 22, wherein the polarization diversity unit comprises a birefringent element and at least one half-wave plate.
- 24. A wavelength blocker according to claim 1, wherein each element of the array is deposited on a transparent substrate, the substrate disposed such that it is perpendicular to a dispersion plane of the diffraction grating.
- 25. A wavelength blocker according to claim 1, wherein each element of the array is coupled to a substrate, the substrate disposed such that it is out of the optical path of the plurality of sub-beams of light.
- 26. A wavelength blocker according to claim 25, wherein the substrate is parallel to the dispersion plane.
- 27. A wavelength blocker according to claim 1, wherein each addressable element comprises a blocking element movable between a first position where it is positioned to substantially intercept an optical path of a sub-beam of light and a second position where it is positioned to substantially avoid the plurality of sub-beams of light.
- 28. A wavelength blocker according to claim 1, wherein each independently addressable element is designed for variably blocking a corresponding sub-beam of light to produce a variably attenuated sub-beam of light.
- 29. A wavelength blocker according to claim 3, comprising a spherical mirror having a focal plane, wherein the diffraction grating and continuous reflecting surface are disposed substantially in the focal plane.
- 30. A wavelength blocker according to claim 1, comprising a partially transmissive mirror optically disposed between the diffraction grating and the array of independently addressable elements disposed for tapping a portion of the beam of light before selected channels encounter the array of independently addressable elements.
- 31. A wavelength blocker according to claim 1, comprising a partially transmissive mirror optically disposed between the diffraction grating and the array of independently addressable elements disposed for tapping a portion of the beam of light after selected channels encounter the array of independently addressable elements.
- 32. A wavelength blocker according to claim 30, wherein the partially transmissive mirror is also disposed for tapping a portion of the beam of light after the selected channels encounter the array of independently addressable elements.
- 33. A wavelength blocker according to claim 32, comprising a first detector array for detecting an intensity of each channel of the input beam of light before the beam of light encounters the array and a second detector array for detecting an intensity of each channel of the beam of light after the beam of light encounters the array.
- 34. A wavelength blocker according to claim 1, comprising a second array of independently addressable elements optically disposed behind the first, adjacent independently addressable element of each of the first and second arrays for blocking alternating communication channels of the input beam of light.
- 35. A wavelength blocker according to claim 1, wherein the array of independently addressable elements is negatively pixellated.
- 36. A wavelength blocker comprising:
an input port for launching an input beam of light corresponding to an input optical signal having a plurality of wavelength channels; first dispersing means disposed for dispersing the input beam of light into a plurality of sub-beams of light, each sub-beam of light corresponding to a different wavelength channel; an array of independently addressable elements, each independently addressable element for selectively blocking a different sub-beam of light; second dispersing means for receiving unblocked sub-beams beams of light and for producing a single multiplexed beam of light therefrom; and an output port for outputting an output optical signal corresponding to the single multiplexed beam of light, wherein the array is designed such that substantially no loss of signal between adjacent unblocked wavelength channels is observed in the output signal relative to the input signal.
- 37. A wavelength blocker comprising:
a first optical fibre for launching an input beam of light into the wavelength blocker; a spherical mirror having a focal plane for receiving the input beam of light launched from the first optical fibre and for reflecting it in a substantially backwards direction; a dispersive element disposed substantially at the focal plane of the spherical mirror for receiving the reflected beam of light and for producing a dispersed beam of light which is transmitted back to the spherical mirror; an array of discrete blocking elements disposed substantially at the focal plane of the spherical mirror, each discrete blocking element operable between a first state wherein it blocks a portion of the dispersed beam of light, and a second state wherein it passes the portion of the dispersed beam of light; and a reflector having a continuous reflecting surface for reflecting the passed portion of the dispersed beam of light back to the spherical mirror and the dispersive element such that it is output via one of the first optical fibre and a second optical fibre, wherein the array of discrete blocking elements is designed such that regions between blocking elements in the first state are substantially transparent to the input beam of light.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority from Provisional Appl. No. 60/317,935 filed on Sep. 10, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60317935 |
Sep 2001 |
US |