Claims
- 1. An optical wavelength router comprising:
a beam displacer separating an input beam into a first beam and second beam having orthogonal polarizations; a split-mirror resonator having: (a) a front mirror with a partially-reflective first region and a second region having a higher reflectivity than said first region; and (b) at least one reflective back mirror spaced a predetermined distance from said front mirror; wherein said first beam is incident on said first region, and said second beam is incident on said second region of said front mirror, so that a portions of said first and second beams are reflected by said front mirror and the remainders of said first and second beams are transmitted through said front mirror and are reflected by at least one of said back mirrors through said front mirror so that the group delay of said first and second beam are dependent on wavelength; a birefringent element combining and interfering said first and second beams reflected from said split-mirror resonator to produce a beam having mixed polarization as a function of wavelength; a polarization-dependent routing element separating the polarized components of said mixed-polarization beam to produce two output beams containing complimentary subsets of the spectrum of the input beam.
- 2. The optical wavelength router of claim 1 wherein said birefringent element comprises a beam displacer.
- 3. The optical wavelength router of claim 1 wherein said birefringent element comprises at least one waveplate.
- 4. The optical wavelength router of claim 1 wherein said polarization-dependent routing element comprises a polarized beamsplitter.
- 5. The optical wavelength router of claim 1 wherein said split-mirror resonator further comprises a plurality of reflective back mirrors arranged in a reflective ring behind said front mirror.
- 6. A method for optical wavelength routing predetermined complementary subsets of the optical spectrum in an input beam, said method comprising:
separating an input beam into a first beam and second beam having orthogonal polarizations; providing a split-mirror resonator having: (a) a front mirror with a partially-reflective first region and a second region having a higher reflectivity that said first region; and (b) at least one reflective back mirror spaced a predetermined distance from said front mirror; wherein said first beam is incident on said first region and said second beam is incident on said second region of said front mirror, so that portions of said first and second beams are reflected by said front mirror and the remainders of said first and second beams are transmitted through said front mirror and are reflected by at least one of said back mirrors through said front mirror so that the group delay of said first and second beams are dependent on wavelength; combining and interfering said first and second beams reflected from said split-mirror resonator to produce a beam having mixed polarization as a function of wavelength; separating the polarized components of said mixed-polarization beam to produce two output beams containing complimentary subsets of the spectrum of the input beam.
- 7. The method of claim 6 wherein said step of separating the input beam into said first and second beams is performed by a birefringent element.
- 8. The method of claim 6 wherein said step of separating the polarized components of said mixed-polarization beam is performed by a polarized beamsplitter.
- 9. The method of claim 6 wherein said split-mirror resonator further comprises a plurality of reflective back mirrors arranged in a reflective ring behind said front mirror.
- 10. The method of claim 6 wherein said step of combining and interfering said first and second beams reflected from said split-mirror resonator is performed by a birefringent element.
- 11. An optical wavelength router comprising:
a beam displacer separating an input beam into a first beam and second beam having orthogonal polarizations; a split-mirror resonator having: (a) a front mirror with a partially-reflective first region and a second region having a higher reflectivity than said first region; and (b) a reflective back mirror spaced a predetermined distance from said front mirror; wherein said first beam is incident on said first region and said second beam is incident on said second region of said front mirror, so that a portions of said first and second beams are reflected by said front mirror and the remainders of said first and second beams are transmitted through said front mirror and are reflected by at least one of said back mirrors through said front mirror so that the group delay of said first and second beam are dependent on wavelength; a zero-order beam displacer combining said first and second beams reflected from said split-mirror resonator with only a negligible amount of birefringence added to said first and second beams; at least one waveplate generating birefringence in said combined beam from said zero-order beam displacer, thereby providing a predetermined difference in the optical path lengths between different polarized components of said combined beam to produce a beam having mixed polarization as a function of wavelength; and a polarization-dependent routing element separating the polarized components of said mixed-polarization beam to produce two output beams containing complimentary subsets of the spectrum of the input beam.
- 12. The optical wavelength router of claim 11 wherein said zero-order beam displacer comprises:
a first birefringent element having its optical axis oriented in a predetermined direction; and a second birefringent element having its optical axis oriented at approximately 90 degrees relative to the optical axis of said first birefringent element.
- 13. The optical wavelength router of claim 11 wherein said zero-order beam displacer comprises:
a first birefringent element having its optical axis oriented in a predetermined direction; a second birefringent element having its optical axis oriented at approximately 90 degrees relative to the optical axis of said first birefringent element; and a zero-order half-wave plate between said first and second birefringent elements.
- 14. An optical wavelength router comprising:
a first beam displacer separating an input beam into a pair of orthogonally-polarized beams; a first polarization rotator rotating the polarization of at least one of said beams so that both beams have a first polarization; a polarization-dependent routing element routing said beam pair along a predetermined optical path; a birefringent element separating said beam pair into two pairs of orthogonally-polarized beams; a split-mirror resonator having: (a) a front mirror with a partially-reflective first region and a second region having a higher reflectivity that said first region; and (b) a reflective back mirror spaced a predetermined distance from said front mirror; wherein two beams of said two pairs of orthogonally-polarized beams are incident on said first region, and the other two beams are incident on said second region of said front mirror, so that a portions of said beam pairs are reflected by said front mirror and the remainders of said beam pairs are transmitted through said front mirror and are reflected by said back mirror through said front mirror so that the group delay of said beam pairs are dependent on wavelength; wherein said beam pairs reflected by said split-mirror resonator interfere and combine within said birefringent element to produce two beams having mixed polarization as a function of wavelength; wherein said polarization-dependent routing element separates the polarized components of said mixed-polarization beams so that those components of said mixed-polarization beams having said first polarization are routed as a pair of beams along a first optical path toward said first polarization rotator and said first beam displacer, and those components of said mixed-polarization beams having a polarization orthogonal to said first polarization are routed as a pair of beams along a second optical path; wherein said first polarization rotator rotates the polarization of at least one of said beam pair along said first optical path so that said beam pair becomes orthogonally polarized; wherein said first beam displacer combines said orthogonally-polarized beam pair exiting said first polarization rotator to produce a first output beam containing a subset of the optical spectrum of the input beam; a second polarization rotator rotating the polarization of at least one of said beam pair along said second optical path so that said beam pair becomes orthogonally polarized; and a second beam displacer combining said orthogonally-polarized beam pair exiting said second polarization rotator to produce a second output beam containing a subset of the optical spectrum of the input beam.
- 15. The optical wavelength router of claim 11 wherein said birefringent element comprises at least one beam displacer.
- 16. The optical wavelength router of claim 11 wherein said birefringent element comprises at least one waveplate and a beam displacer.
- 17. The optical wavelength router of claim 16 wherein said beam displacer comprises a zero-order beam displacer.
- 18. The optical wavelength router of claim 11 wherein said polarization-dependent routing element comprises a polarized beamsplitter.
- 19. The optical wavelength router of claim 11 wherein said first polarization rotator comprises a half-wave plate.
- 20. The optical wavelength router of claim 11 wherein said second polarization rotator comprises a half-wave plate.
- 21. An optical wavelength router comprising:
a first beam displacer separating an input beam into a pair of orthogonally polarized beams; a first polarization rotator rotating the polarization of at least one of said beams so that both beams have a first polarization; a polarization-dependent routing element routing said beam pair along a predetermined optical path; at least one waveplate producing orthogonally-polarized components in said beam pair; a second beam displacer spatially separating the orthogonally-polarized components in said beam pair into two pairs of orthogonally-polarized beams; a split-mirror resonator having: (a) a front mirror with a partially-reflective portion and a totally-reflective portion; and (b) a reflective back mirror spaced a predetermined distance from said front mirror, wherein two beams of said two pairs of orthogonally-polarized beams are reflected by said reflective portion of said front mirror, and the other two beams are transmitted through said partially-reflective portion of said front mirror and are reflected by said back mirror through said partially-reflective portion of said front mirror thereby providing a group delay that is dependent on wavelength; wherein said second beam displacer combines said beam pairs reflected by said split-mirror resonator to produce two beams having mixed polarization that interfere within said waveplate to produce two beams having mixed polarization as a function of wavelength; wherein said polarization-dependent routing element separates the polarized components of said mixed-polarization beams so that those components of said mixed-polarization beams having said first polarization are routed as a pair of beams along a first optical path toward said first polarization rotator and said first beam displacer, and those components of said mixed polarization beams having a polarization orthogonal to said first polarization are routed as a pair of beams along a second optical path; wherein said first polarization rotator rotates the polarization of at least one of said beam pair along said first optical path so that said beam pair becomes orthogonally polarized; wherein said first beam displacer combines said orthogonally-polarized beam pair exiting said first polarization rotator to produce a first output beam containing a subset of the optical spectrum of the input beam; a second polarization rotator rotating the polarization of at least one of said beam pair along said second optical path so that said beam pair becomes orthogonally polarized; and a third beam displacer combining said orthogonally-polarized beam pair exiting said second polarization rotator to produce a second output beam containing a subset of the optical spectrum of the input beam.
- 22. The optical wavelength router of claim 21 wherein said second beam displacer comprises a zero-order beam displacer.
- 23. The optical wavelength router of claim 21 wherein said polarization-dependent routing element comprises a polarized beamsplitter.
RELATED APPLICATION
[0001] The present application is based on the Applicants' U.S. Provisional Patent Application Ser. No. 60/186,314, filed on Mar. 2, 2000, entitled “Optical Wavelength Router Based On Polarization Interferometer.”
Provisional Applications (1)
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Number |
Date |
Country |
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60186314 |
Mar 2000 |
US |
Continuations (1)
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Number |
Date |
Country |
Parent |
09547813 |
Apr 2000 |
US |
Child |
09874641 |
Jun 2001 |
US |