Claims
- 1. A diffraction grating for diffracting an optical signal of wavelength λ in an interference order m higher than first order, the diffraction grating comprising:
a substrate; and an arrangement of reflective faces oriented at respective blaze angles θb spaced along a surface of the substrate with an average separation d, each reflective face being supported by a support wall, wherein the blaze angles θb substantially differ from the Littrow condition sin θb=mλ/2d, and wherein each reflective face has an extent such that its orthogonal projection on the substrate is less than the average separation d, whereby a trench having a trench width s is defined between each support wall and the reflective face subsequent to that support wall within the arrangement and a groove depth t is defined by the altitude of the support wall with respect to the surface of the substrate.
- 2. The diffraction grating according to claim 1 wherein the interference order is second order m=2, the wavelength λ is within the range 1500-1600 nm, and the reflective faces are uniformly spaced at a grating density 1/d between 350 and 550 faces/mm.
- 3. The diffraction grating according to claim 2 wherein the grating density 1/d is between 400 and 500 faces/mm.
- 4. The diffraction grating according to claim 2 wherein the grating density 1/d is substantially equal to 450 faces/mm.
- 5. The diffraction grating according to claim 2 wherein each of the blaze angles θb is between 50° and 70°.
- 6. The diffraction grating according to claim 5 wherein each of the blaze angles θb is between 50° and 60°.
- 7. The diffraction grating according to claim 5 wherein each of the blaze angles θb is substantially equal to 55.8°.
- 8. The diffraction grating according to claim 7 wherein the trench width s of each trench is between 0.50 and 0.70 1 μm.
- 9. The diffraction grating according to claim 8 wherein the trench width s of each trench is between 0.55 and 0.65 μm.
- 10. The diffraction grating according to claim 7 wherein the groove depth t is between 2300 and 2500 nm.
- 11. The diffraction grating according to claim 10 wherein the groove depth t is between 2300 and 2400 nm.
- 12. The diffraction grating according to claim 10 wherein the groove depth t is between 2400 and 2500 nm.
- 13. The diffraction grating according to claim 1 wherein the diffraction grating exhibits an average diffraction efficiency in S and P polarizations exceeding 80% when the optical signal has wavelength λ in the range 1500-1600 nm.
- 14. The diffraction grating according to claim 13 wherein the diffraction grating further exhibits a polarization-dependent loss less than 0.15 dB when the optical signal has a wavelength λ in the range 1500-1600 nm.
- 15. The diffraction grating according to claim 1 wherein the diffraction grating exhibits a polarization-dependent loss less than 0.15 dB when the optical signal has a wavelength λ in the range 1500-1600 nm.
- 16. The diffraction grating according to claim 1 wherein each of the plurality of reflective faces is comprised of a gold coating.
- 17. A diffraction grating for diffracting an optical signal of wavelength λ, the diffraction comprising:
a substrate; and an arrangement of reflective faces oriented at respective blaze angles θb spaced along a surface of the substrate, wherein the arrangement of reflective faces is configured such that the optical signal is diffracted with a polarization-dependent loss less than 0.4 dB when the wavelength λ is within the range 1500-1600 nm.
- 18. A diffraction grating according to claim 17 wherein the arrangement of reflective faces is configured such that the optical signal is diffracted with a polarization-dependent loss less than 0.15 dB when the wavelength λ is within the range 1500-1600 nm.
- 19. A diffraction grating according to claim 17 wherein the arrangement of reflective faces is configured such that the optical signal is diffracted with a polarization-dependent loss less than 0.10 dB when the wavelength λ is within the range 1530-1565 nm.
- 20. A diffraction grating according to claim 17 wherein the arrangement of reflective faces is configured such that the optical signal is diffracted with a polarization-dependent loss less than 0.04 dB when the wavelength λ is within the range 1530-1565nm.
- 21. A method for diffracting an optical signal of wavelength λ in an interference order m higher than first order, the method comprising:
propagating the optical signal towards a plurality of reflective faces oriented at respective blaze angles θb spaced along a surface of a substrate with an average separation d, each reflective face being supported by a support wall, wherein the blaze angles substantially differ from the Littrow condition sin θb=mλ/2d, and wherein each reflective face has an extent such that its orthogonal projection on the substrate is less than the average separation d, whereby a trench having a trench width s is defined between each support wall and the reflective face subsequent to that support wall within the arrangement and a groove depth t is defined by the altitude of the support wall with respect to the surface of the substrate; and reflecting the optical signal off the plurality of reflective faces.
- 22. The method according to claim 21 wherein the interference order is second order m=2, the wavelength λ is within the range 1500-1600 nm, and the reflective faces are uniformly spaced at a grating density 1/d between 350 and 550 faces/mm.
- 23. The method according to claim 22 wherein the grating density 1/d is between 400 and 500 faces/mm.
- 24. The method according to claim 22 wherein the grating density 1/d is substantially equal to 450 faces/mm.
- 25. The method according to claim 22 wherein each of the blaze angles θb is between 50° and 70°.
- 26. The method according to claim 25 wherein each of the blaze angles θb is between 50° and 60°.
- 27. The method according to claim 25 wherein each of the blaze angles θb is substantially equal to 55.8°.
- 28. The method according to claim 27 wherein the trench width s of each trench is between 0.50 and 0.70 μm.
- 29. The method according to claim 28 wherein the trench width s of each trench is between 0.55 and 0.65 μm.
- 30. The method according to claim 27 wherein the groove depth t is between 2300 and 2500 nm.
- 31. The method according to claim 30 wherein the groove depth t is between 2300 and 2400 nm.
- 32. The method according to claim 30 wherein the groove depth t is between 2400 and 2500 nm.
- 33. The method according to claim 21 wherein reflecting the optical signal off the plurality of reflective faces comprises reflecting the optical signal with an average diffraction efficiency in S and P polarizations exceeding 80% when the optical signal has a wavelength λ in the range 1500-1600 nm.
- 34. The method according to claim 33 wherein reflecting the optical signal off the plurality of reflective faces further comprises reflecting the optical signal with a polarization-dependent loss less than 0.15 dB when the optical signal has a wavelength λ in the range 1500-1600 nm.
- 35. The method according to claim 21 wherein reflecting the optical signal off the plurality of reflective faces further comprises reflecting the optical signal with a polarization-dependent loss less than 0.15 dB when the optical signal has a wavelength λ in the range 1500-1600 nm.
- 36. The method according to claim 21 wherein each of the plurality of reflective faces is comprised of a gold coating.
- 37. A method for diffracting an optical signal of wavelength λ the method comprising:
propagating the optical signal towards an arrangement of reflective faces oriented at respective blaze angles θb spaced along a surface of a substrate; and reflecting the optical signal off the arrangement of reflective faces with a polarization-dependent loss less than 0.4 dB when the wavelength λ is within the range 1500-1600nm.
- 38. The method according to claim 37 wherein reflecting the optical signal comprises reflecting the optical signal off the arrangement of reflective faces with a polarization-dependent loss less than 0.15 dB when the wavelength λ is within the range 1500-1600 nm.
- 39. The method according to claim 37 wherein reflecting the optical signal comprises reflecting the optical signal off the arrangement of reflective faces with a polarization-dependent loss less than 0.10 dB when the wavelength λ is within the range 1530-1565 nm.
- 40. The method according to claim 37 wherein reflecting the optical signal comprises reflecting the optical signal off the arrangement of reflective faces with a polarization-dependent loss less than 0.04 dB when the wavelength λ is within the range 1530-1565 nm.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part application of U.S. patent application Ser. No. 09/615,300 entitled “DIFFRACTION GRATING WITH REDUCED POLARIZATION-DEPENDENT LOSS,” filed Jul. 13, 2000, by Larry Fabiny and Tony Sarto, and a continuation-in-part application of U.S. patent application Ser. No. 09/669,758 entitled “GRATING FABRICATION PROCESS USING COMBINED CRYSTALLINE-DEPENDENT AND CRYSTALLINE-INDEPENDENT ETCHING,” filed Sep. 26, 2000, the disclosures of each of which are incorporated herein by reference in their entirety for all purposes.
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
09615300 |
Jul 2000 |
US |
Child |
09748687 |
Dec 2000 |
US |
Parent |
09669758 |
Sep 2000 |
US |
Child |
09748687 |
Dec 2000 |
US |