Claims
- 1. An optical wavelength filter separating an input signal into a first output signal having a first spectral band and a second output signal having a second spectral band, wherein the first and second spectral bands are substantially complementary, said optical wavelength filter comprising:
a polarizer converting an input signal to a predetermined polarization; a series of birefringent waveplates providing a polarization-dependent optical transmission function such that the polarized input beam is decomposed into a first beam component carrying the first spectral band at a first polarization and a second beam component carrying the second spectral band at a second polarization that is orthogonal to the first polarization; a beam displacer spatially separating the beam components exiting the waveplates into a pair of orthogonally-polarized beams; a reflector reflecting the beams from the beam displacer back along optical paths through the beam displacer and waveplates; a polarization rotating element rotating the polarization of the reflected beams by 90 degrees; wherein the beam displacer routes the reflected beams along optical paths through the waveplates that are offset, but parallel to the optical path of the polarized input beam; wherein the waveplates further purify the spectral characteristics of the reflected beams and maintain the polarization of one of the reflected beams, while rotating the polarization of the other reflected beam so that both reflected beams have substantially the same polarization; and a routing element routing one of the reflected beams exiting the waveplates to a first output port and the other reflected beam to a second output port.
- 2. The optical wavelength filter of claim 1 wherein the routing element comprises:
a polarizer rotating the polarization of at least one of the reflected beams exiting the waveplates so that the reflected beams have substantially orthogonal polarizations; and a polarization-dependent routing element routing one of the reflected beams to a first output port and the other reflected beam to a second output port.
- 3. The optical wavelength filter of claim 1 wherein the reflected beams exiting the waveplates have a polarization that is orthogonal to that of the polarized input beam, and further comprising a polarization-dependent routing element spatially separating the reflected beams from the polarized input beam.
- 4. The optical wavelength filter of claim 1 wherein at least one output port further comprises a polarization mode dispersion compensator.
- 5. The optical wavelength filter of claim 1 wherein said waveplates comprise a birefringent material selected from the group consisting of calcite, rutile, YVO4, and LiNbO3.
- 6. The optical wavelength filter of claim 1 wherein said polarization rotating element comprises a half-wave plate.
- 7. The optical wavelength filter of claim 1 wherein said polarization rotating element comprises a quarter-wave plate through which the beams pass twice.
- 8. An optical wavelength filter separating an input signal into a first output signal having a first spectral band and a second output signal having a second spectral band, wherein the first and second spectral bands are substantially complementary, said optical wavelength filter comprising:
a polarizer converting an input signal to a predetermined polarization; a series of birefringent waveplates providing a polarization-dependent optical transmission function such that the polarized input beam is decomposed into a first beam component carrying the first spectral band at a first polarization and a second beam component carrying the second spectral band at a second polarization that is orthogonal to the first polarization; a beam displacer spatially separating the beam components exiting the waveplates into a pair of orthogonally-polarized beams; a quarter-wave plate converting the pair of orthogonally-polarized beams into a pair of circularly-polarized beams; a reflector reflecting the circularly-polarized beams back along optical paths through the quarter-wave plate, beam displacer, and waveplates; wherein the quarter-wave plate converts the circularly-polarized reflected beams into two orthogonally-polarized beams having polarizations that are rotated by 90 degrees from those of the orthogonally-polarized beams entering the quarter-wave plate from the beam displacer; wherein the beam displacer routes the orthogonally-polarized reflected beams along optical paths through the waveplates that are offset, but parallel to the optical path of the polarized input beam; wherein the waveplates further purify the spectral characteristics of the reflected beams and maintain the polarization of one of the reflected beams, while rotating the polarization of the other reflected beam so that both reflected beams have substantially the same polarization; and a routing element routing one of the reflected beams exiting the waveplates to a first output port and the other reflected beam to a second output port.
- 9. The optical wavelength filter of claim 8 wherein the routing element comprises:
a polarizer rotating the polarization of at least one of the reflected beams exiting the waveplates so that the reflected beams have substantially orthogonal polarizations; and a polarization-dependent routing element routing one of the reflected beams to a first output port and the other reflected beam to a second output port.
- 10. The optical wavelength filter of claim 8 wherein the reflected beams exiting the waveplates have a polarization that is orthogonal to that of the polarized input beam, and further comprising a polarization-dependent routing element spatially separating the reflected beams from the polarized input beam.
- 11. The optical wavelength filter of claim 8 wherein at least one output port further comprises a polarization mode dispersion compensator.
- 12. The optical wavelength filter of claim 8 wherein said waveplates comprise a birefringent material selected from the group consisting of calcite, rutile, YVO4, and LiNbO3.
- 13. A method for separating an input signal into a first output signal having a first spectral band and a second output signal having a second spectral band, wherein the first and second spectral bands are substantially complementary, said method comprising:
converting an input signal to a predetermined polarization; providing a series of birefringent waveplates having a polarization-dependent optical transmission function such that the polarized beam is decomposed into a first beam component carrying the first spectral band at a first polarization and a second beam component carrying the second spectral band at a second polarization that is orthogonal to the first polarization; spatially separating the beam components exiting the waveplates into a pair of orthogonally-polarized beams; rotating the polarizations of the beam pair by 90 degrees; reflecting the beam pair; routing the reflected beams along optical paths through the waveplates that are offset, but parallel to the optical path of the polarized input beam; wherein the waveplates further purify the spectral characteristics of the reflected beams and maintain the polarization of one of the reflected beams, while rotating the polarization of the other reflected beam so that both reflected beams have substantially the same polarization; spatially separating the reflected beams from the polarized input beam; and routing one of the reflected beams exiting the waveplates to a first output port and the other reflected beam to a second output port.
- 14. The method of claim 13 wherein the step of routing the reflected beams to the first and second output ports further comprises:
rotating the polarization of at least one of the reflected beams so that the reflected beams have substantially orthogonal polarizations; and routing one of the reflected beams to a first output port and the other reflected beam to a second output port based on the polarizations of the reflected beams.
- 15. The method of claim 13 wherein the reflected beams exiting the waveplates have a polarization that is orthogonal to that of the polarized input beam, and wherein the step of spatially separating the reflected beams from the polarized input beam is performed by a polarization-dependent routing element.
- 16. The method of claim 13 wherein the waveplates comprise a birefringent material selected from the group consisting of calcite, rutile, YVO4, and LiNbO3.
- 17. An optical wavelength filter separating an input signal into a first output signal having a first spectral band and a second output signal having a second spectral band, wherein the first and second spectral bands are substantially complementary, said optical wavelength filter comprising:
a first beam displacer spatially separating an input signal into a first beam and a second beam having orthogonal polarizations; a first polarization rotator rotating the polarization of at least one of the orthogonally-polarized beams so that both beams have substantially the same polarization; a series of birefringent waveplates providing a polarization-dependent optical transmission function such that the first beam is decomposed into a first beam component and a second beam component, and the second beam decomposes into a third beam component and a fourth beam component, wherein the first and third beam components carry the first spectral band at a first polarization and the second and fourth beam components carry the second spectral band at a second polarization that is orthogonal to the first polarization; a second beam displacer spatially separating the beam components exiting the waveplates into two pairs of orthogonally-polarized beams; a quarter-wave plate converting the two pairs of orthogonally-polarized beams into circularly-polarized beams; a mirror reflecting the circularly-polarized beams exiting the quarter-wave plate back along optical paths through the quarter-wave plate, beam displacer, and waveplates; wherein the quarter-wave plate converts the reflected circularly-polarized beams into two pairs of orthogonally-polarized beams having polarizations that are rotated by 90 degrees from those of the orthogonally-polarized beams entering the quarter-wave plate from the second beam displacer; wherein the waveplates further purify the spectral characteristics of the reflected beams and maintain the polarization of the pair of reflected beams having the first polarization, while rotating the polarization of the pair of reflected beams having the second polarization so that all of the reflected beams have the first polarization when exiting the waveplates; a second polarization rotator rotating the polarization of at least one beam of each pair of reflected beams so that both pairs of reflected beams have substantially orthogonal polarizations, wherein the beams carrying the first spectral band have substantially the same polarization and the beams carrying the second spectral band have substantially the same polarization; and a polarization-dependent routing element routing the beams carrying the first spectral band along an optical path toward a first output port, and routing the beams carrying the second spectral band along an optical path toward a second output port.
- 18. The optical wavelength filter of claim 17 wherein at least one output port further comprises:
a polarization rotator rotating the polarization of at least one of the beams from the polarization-dependent routing element so that the beams become orthogonally polarized; and a birefringent element combining the orthogonally-polarized beams at the output port.
- 19. The optical wavelength filter of claim 18 wherein at least one output port further comprises a polarization mode dispersion compensator.
- 20. The optical wavelength filter of claim 17 wherein the reflected beams exiting the waveplates have a polarization that is orthogonal to that of the polarized input beams, and further comprising a polarization-dependent routing element spatially separating the reflected beams exiting the waveplates from the polarized input beams.
- 21. The optical wavelength filter of claim 17 wherein said waveplates comprise a birefringent material selected from the group consisting of calcite, rutile, YVO4, and LiNbO3.
- 22. An optical wavelength filter separating an input signal into a first output signal having a first spectral band and a second output signal having a second spectral band, wherein the first and second spectral bands are substantially complementary, said optical wavelength filter comprising:
a polarizer converting an input signal to a predetermined polarization a series of birefringent waveplates providing a polarization-dependent optical transmission function such that the polarized beam is decomposed into a first beam component carrying the first spectral band at a first polarization and a second beam component carrying the second spectral band at a second polarization that is orthogonal to the first polarization; a beam displacer spatially separating the beam components exiting the waveplates into a pair of orthogonally-polarized beams; a quarter-wave plate converting the pair of orthogonally-polarized beams into a pair of circularly-polarized beams; a mirror reflecting the circularly-polarized beams back along optical paths through the quarter-wave plate, beam displacer, and waveplates; wherein the quarter-wave plate converts the reflected circularly-polarized beams into two orthogonally-polarized beams having polarizations that are rotated by 90 degrees from those of the orthogonally-polarized beams entering the quarter-wave plate from the beam displacer; wherein the beam displacer routes the orthogonally-polarized reflected beams along optical paths through the waveplates that are offset, but parallel to the optical path of the polarized input beam; wherein the waveplates further purify the spectral characteristics of the reflected beams and maintain the polarization of one of the reflected beams, while rotating the polarization of the other reflected beam so that both reflected beams have substantially the same polarization, which is substantially orthogonal to the polarization of the polarized input beam; and a polarization-dependent routing element spatially separating the reflected beams exiting the waveplates from the polarized input beam; a dual-core collimator having a first output port coupled to a first optical fiber and a second output port coupled to a second optical fiber; and a converging element converging the reflected beams exiting the polarization-dependent routing element so that one beam is directed to the first output port of the dual-core collimator and the other beam is directed to the second output port of the dual-core collimator.
- 23. The optical wavelength filter of claim 22 wherein said waveplates comprise a birefringent material selected from the group consisting of calcite, rutile, YVO4, and LiNbO3.
- 24. The optical wavelength filter of claim 22 wherein the converging element comprises a Wollaston prism.
- 25. The optical wavelength filter of claim 22 wherein the converging element comprises an angle compensator prism.
RELATED APPLICATIONS
[0001] The present application is a continuation-in-part of the Applicants' co-pending U.S. patent application Ser. No. 09/274,270, entitled “Method and Apparatus for Wavelength Multiplexing/Demultiplexing,” filed on Mar. 22, 1999, which is a continuation-in-part of U.S. patent application Ser. No. 09/240,550, filed on Jan. 29, 1999, now U.S. Pat. No. 5,978,116, issued on Nov. 2, 1999, which was a continuation of U.S. patent application Ser. No. 08/739,424, filed on Oct. 29, 1996, now U.S. Pat. No. 5,867,291, issued on Feb. 2, 1999.
Continuations (1)
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Number |
Date |
Country |
Parent |
08739424 |
Oct 1996 |
US |
Child |
09240550 |
Jan 1999 |
US |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
09274270 |
Mar 1999 |
US |
Child |
09730320 |
Dec 2000 |
US |
Parent |
09240550 |
Jan 1999 |
US |
Child |
09274270 |
Mar 1999 |
US |