Claims
- 1. An optical interleaver comprising:an input port to receive an input light beam; a group of optical elements for decomposing said input light beam into a first light beam including a first set of wavelengths represented by λ1, λ3, λ5, . . . , λn and a second light beam including of a second set of wavelengths represented by λ2, λ4, λ6, . . . , λn−1, wherein said first light beam and said second light beam transmitted respectively in a first and second optical paths, and said group of optical elements further decomposing and generating two sets of mutually orthogonally polarized and parallel beam-components from said first beam and second beam; and an incline angle means coupled to said group of optical elements for projecting said two sets of mutually orthogonally polarized and parallel beam-components for said first and second beam respectively with a first incline angle and a second incline angle relative to an optical axis of said interleaver.
- 2. The optical interleaver of claim 1 further comprising:an output beam-component combining means for combining said mutual orthogonally polarized and parallel beam-components into a first output beam and a second output beam projected with said first and second incline angles respectively relative to said optical axis of said interleaver.
- 3. The optical interleaver of claim 2 further comprising:a dual fiber collimator having a first optical fiber and a second optical fiber disposed off-axis of said collimator for directly receiving said first output beam and said second output beam projected respectively with said first and second inclined angles.
- 4. The optical interleaver of claim 1 wherein:said incline angle means is a prism.
- 5. The optical interleaver of claim 1 wherein:said incline angle means is a Wollaston prism.
- 6. The optical interleaver of claim 1 wherein:said incline angle means is a Rochon prism.
- 7. The optical interleaver of claim 2 wherein:said output beam-component combining means for combining said mutual orthogonally polarized and parallel beam-components into a first output beam and a second output beam is a birefringent crystal.
- 8. The optical interleaver of claim 1 wherein:said group of optical elements for decomposing said input light beam into said first light beam and said second light beam includes at least a first birefringent crystal for transmitting said first light beam and said second light beam respectively in a first and second optical paths with mutually orthogonal states of polarization.
- 9. The optical interleaver of claim 1 wherein:said group of optical elements further includes a wavelength sensitive wave plate (WSWP) having a temperature coefficient refraction index for compensating an optical path temperature-effect.
- 10. The optical interleaver of claim 9 wherein:said wavelength sensitive wave plate (WSWP) further comprising wave plate of a positive temperature coefficient.
- 11. The optical interleaver of claim 9 wherein:said wavelength sensitive wave plate (WSWP) further comprising wave plate of a negative temperature coefficient.
- 12. The optical interleaver of claim 9 wherein:said wavelength sensitive wave plate (WSWP) further comprising a YVO4 wave plate.
- 13. The optical interleaver of claim 9 wherein:said wavelength sensitive wave plate (WSWP) further comprising a NbLiO3 wave plate.
- 14. An optical system for separating a multiple wavelengths of an input light beam into a first output beam and a second output beam having two different sets of wavelengths, said optical system comprising:an incline angle means for projecting said first output beam and said second output beam respectively with a first and second small incline angles relative to an optical axis of the optical system.
- 15. The optical system of claim 14 further comprising:an output dual-fiber collimator having a first and second optical fibers for directly coupling to and receiving from said optical system said first beam and said second beam respectively each projected with said small incline angle.
- 16. The optical system of claim 14 further comprising:an output beam-component combining means for combining two mutual orthogonally polarized and parallel beam-components generated from said input light beam into said first output beam and said second output beam projected with said first and second incline angles respectively relative to said optical axis of said optical system.
- 17. The optical system of claim 14 wherein:said incline angle means is a prism.
- 18. The optical system of claim 14 wherein:said incline angle means is a Wollaston prism.
- 19. The optical system of claim 14 wherein:said incline angle means is a Rochon prism.
- 20. The optical system of claim 16 wherein:said output beam-component combining means for combining said mutual orthogonally polarized and parallel beam-components into said first output beam and said second output beam is a birefringent crystal.
- 21. The optical system of claim 14 further comprising:a first birefringent crystal for decomposing input light beam into said first light beam and said second light beam and transmitting said first light beam and said second light beam respectively in a first and second optical paths with mutually orthogonal states of polarization.
- 22. The 14 optical system of claim 14 further comprising:a wavelength sensitive wave plate (WSWP) having a temperature coefficient refraction index for compensating optical paths temperature-effect.
- 23. The optical system of claim 22 wherein:said wavelength sensitive wave plate (WSWP) further comprising wave plate of a positive temperature coefficient.
- 24. The optical system of claim 22 wherein:said wavelength sensitive wave plate (WSWP) further comprising wave plate of a negative temperature coefficient.
- 25. The optical system of claim 22 wherein:said wavelength sensitive wave plate (WSWP) further comprising a YVO4 wave plate.
- 26. The optical system of claim 22 wherein:said wavelength sensitive wave plate (WSWP) further comprising a NbLiO3 wave plate.
- 27. A method of applying an interleaver for separating a multiple wavelengths of an input light beam into a first output beam and a second output beam having two different sets of wavelengths, said method comprising a step of:employing an incline angle means for projecting said first output beam and said second output beam respectively with a first and second small incline angles relative to an optical axis of the interleaver.
- 28. The method of claim 27 further comprising:employing an output dual-fiber collimator provided with a first and second optical fibers for directly coupling to and receiving from said interleaver said first beam and said second beam respectively each projected with said small incline angle; employing an incline angle means for projecting said first output beam and said second output beam respectively with a first and second small incline angles relative to an optical axis of the interleaver.
- 29. The method of claim 27 further comprising:employing an output dual-fiber collimator provided with a first and second optical fibers for directly coupling to and receiving from said interleaver said first beam and said second beam respectively each projected with said small incline angle.
Parent Case Info
This Formal Application claims a Priority Date of Nov. 1, 1999 benefited from a Provisional Application Ser. No. 60/162,853, filed by the same Applicant of this Application on Nov. 1, 1999.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
6052228 |
Xie et al. |
Apr 2000 |
A |
6208444 |
Wong et al. |
Mar 2001 |
B1 |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/162853 |
Nov 1999 |
US |