Claims
- 1. An optical filter comprising:
an optical waveguide including:
an outer cladding having a core disposed therein, wherein an outer waveguide dimension of the waveguide is greater than 0.3 mm; a slanted grating imparted in the waveguide for selectively attenuating a received optical input signal to provide an optical output signal having a desire spectral gain profile.
- 2. The optical filter of claim 1, wherein the slanted grating is disposed substantially in only the cladding.
- 3. The optical filter of claim 1, wherein the slanted grating is disposed substantially in only the core.
- 4. The optical filter of claim 1, wherein the slanted grating is disposed in both the core and the cladding.
- 5. The optical filter of claim 1, wherein the core and cladding are photosensitive, whereby the photosensitivity of the cladding is greater than the photosensitivity of the core.
- 6. The optical filter of claim 1, wherein the core and cladding are photosensitive, whereby the photosensitivity of the core is greater than the photosensitivity of the cladding.
- 7. The optical filter of claim 1, wherein the slanted grating is a Bragg grating.
- 8. The optical filter of claim 1, wherein the slanted grating is aperiodic.
- 9. The optical filter of claim 1, wherein the slanted grating is chirped.
- 10. The optical filter of claim 1, wherein the slanted grating is periodic.
- 11. The optical filter of claim 1, wherein the slanted grating includes a plurality of concatenated slanted gratings.
- 12. The optical filter of claim 1, wherein the slanted grating provides a filter profile to flatten the gain of an input optical signal.
- 13. The optical filter of claim 1, wherein the transverse dimension of the first waveguide is a predetermined value, said value being about 0.3 mm, 0.4 mm, 0.5 mm, 0.6 mm, 0.7 mm, 0.8 mm, 0.9 mm, 1.0 mm, 1.2 mm, 1.4 mm, 1.6 mm, 1.8 mm, 2.0 mm, 2.1 mm, 2.3 mm, 2.5 mm, 2.7 mm, 2.9 mm, 3.0 mm, 3.3 mm, 3.6 mm, 3.9 mm, 4.0 mm, 4.2 mm, 4.5 mm, 4.7 mm, or 5.0 mm.
- 14. The optical filter of claim 1, wherein said length of the first waveguide is a predetermined value, said value being about 3 mm, 5 mm, 7 mm, 9 mm, 10 mm, 12 mm, 14 mm, 16 mm, 18 mm, 20 mm, 21 mm, 23 mm, 25 mm, 27 mm, 29 mm, 30 mm, 32 mm, 34 mm, 20 mm, 36 mm, 38 mm, 40 mm, 45 mm, 50 mm, 55 mm, 60 mm, 65 mm, 70 mm, 75 mm, 80 mm, 85 mm, 90 mm, 95 mm, or 100 mm.
- 15. The optical filter of claim 1, wherein said outer dimension of the first waveguide is greater than a predetermined value, said value being about 0.3 mm, 0.4 mm, 0.5 mm, 0.6 mm, 0.7 mm, 0.8 mm, 0.9 mm, 1.0 mm, 1.2 mm, 1.4 mm, 1.6 mm, 1.8 mm, 2.0 mm, 2.1 mm, 2.3 mm, 2.5 mm, 2.7 mm, 2.9 mm, 3.0 mm, 3.3 mm, 3.6 mm, 3.9 mm, 4.0 mm, 4.2 mm, 4.5 mm, 4.7 mm, or 5.0 mm.
- 16. The optical filter of claim 1, wherein said length of the first waveguide is greater than a predetermined value, said value being about 3 mm, 5 mm, 7 mm, 9 mm, 10 mm, 12 mm, 14 mm, 16 mm, 18 mm, 20 mm, 21 mm, 23 mm, 25 mm, 27 mm, 29 mm, 30 mm, 32 mm, 34 mm, 36 mm, 38 mm, 40 mm, 45 mm, 50 mm, 55 mm, 60 mm, 65 mm, 70 mm, 75 mm, 80 mm, 85 mm, 90 mm, 95 mm, or 100 mm.
- 17. An optical filter comprising:
an optical waveguide including: an outer cladding having a core disposed therein, wherein an outer waveguide dimension of the waveguide is greater than 0.3 mm; a reflective element imparted in the core of the waveguide for selectively attenuating a received optical input signal to provide an optical output signal having a desire spectral gain profile.
- 18. The optical filter of claim 17, wherein said core has an outer core dimension of less than about 12.5 microns.
- 19. The optical filter of claim 17, wherein said core propagates light in substantially a single spatial mode.
- 20. The optical filter of claim 17, wherein a length of said waveguide is greater than 3 mm and less than a buckling length for a predetermined value of said outer waveguide dimension and a predetermined axial compressive strain.
- 21. The optical filter of claim 17, wherein said reflective element comprises a Bragg grating.
- 22. The optical filter of claim 17 wherein at least a portion of said waveguide has a cylindrical shape.
- 23. The optical filter of claim 17 wherein said core comprises a circular end cross-sectional shape.
- 24. The optical filter of claim 17 wherein said core comprises an asymmetrical cross-sectional shape.
- 25. The optical filter of claim 17 wherein said waveguide has a shape that provides a predetermined sensitivity to a length of said wavelength due to a change in axial force on said waveguide.
- 26. The optical filter of claim 25 wherein said shape of said waveguide comprises a dogbone shape.
- 27. The optical filter of claim 25, wherein the cladding includes a first end having a first cross section, an opposing second end having a second cross section and an intermediate section located between the first and second ends having a third cross section smaller than the first and second cross sections, and wherein the grating gain filter is imparted in the core of the optical device within the intermediate section of the cladding.
- 28. The optical filter of claim 17, wherein the reflective element comprises an aperiodic weak Bragg grating.
- 29. The optical filter of claim 17, wherein the reflective element comprises a periodic weak Bragg grating.
- 30. The optical filter of claim 17, wherein the reflective element comprises a plurality of blazed gratings for selectively reflecting the received optical signal at different wavelengths over a spectral range.
- 31. The optical filter of claim 17, further comprising:
a tuning device for tuning the reflective element of the waveguide by exerting an axial force on the waveguide.
- 32. The optical filter of claim 31, wherein the tuning device is responsive to temperature.
- 33. The optical filter of claim 31, wherein the tuning device is responsive to a control signal.
- 34. The optical filter of claim 31, wherein the tuning device includes an actuator to compress the waveguide in response to a control signal.
- 35. The optical filter of claim 32 wherein the tuning device includes a spacer for compressing the waveguide to compensate for spectral shift of the reflective element in response to a temperature change.
- 36. The optical filter of claim 27, wherein the cross section of the intermediate section of the waveguide is uniform.
- 37. The optical filter of claim 27, wherein the cross section of the intermediate section of the waveguide is non-uniform.
- 38. The optical filter of claim 27, wherein the cross section of the intermediate section of the waveguide is tapered to provide the non-uniform cross section.
- 39. The optical filter of claim 27, wherein the cross section of the intermediate section of the waveguide has a step-wise shape for providing the non-uniform cross section.
- 40. The optical filter of claim 17, further comprising an optical directing device for redirecting the reflected optical signal to a light conduit for providing the device signal in the light conduit.
- 41. The optical filter of claim 17, wherein the reflective element includes a plurality of Bragg gratings distributed over a section of the core.
- 42. An optical device comprising:
an optical waveguide including:
an outer cladding having a core disposed therein, wherein an outer waveguide dimension of the waveguide is greater than 0.3 mm; and a reflective element disposed in the waveguide to minimize back reflection.
- 43. The optical device of claim 42, wherein the reflective element includes a slanted grating imparted in the waveguide.
- 44. The optical device of claim 43, wherein the slanted grating is disposed substantially in only the cladding.
- 45. The optical device of claim 43, wherein the slanted grating is disposed in both the core and the cladding.
- 46. The optical device of claim 43, wherein the core and cladding are photosensitive, whereby the photosensitivity of the cladding is greater than the photosensitivity of the core.
- 47. The optical filter of claim 43, wherein the slanted grating is a Bragg grating.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. patent application Ser. No. 09/455,868, filed Dec. 12, 1999; U.S. patent application Ser. No. 09/455,865, filed Dec. 6, 1999, which is a continuation-in-part of U.S. patent application Ser. No. 09/399,495, filed Sep. 20, 1999, now abandoned, which is continuation in part of U.S. patent application Ser. No. 09/205,943, filed Dec. 4, 1998, now abandoned; U.S. application Ser. No. 09/707,084, filed Nov. 6, 2000, which is a continuation-in-part of U.S. patent application Ser. No. 09/691,997, filed Oct. 19, 2000, which is continuation of U.S. patent application Ser. No. 09/4456,112, filed Dec. 6, 1999, now granted (U.S. Pat. No. 6,229,827), which is a continuation-in-part of U.S. patent application Ser. No. 09/400,362 filed Sep. 20, 1999, now abandoned, which is a continuation-in-part of U.S. patent application Ser. No. 09/205,846, filed Dec. 4, 1998, now abandoned; U.S. application Ser. No. 09/699,940, filed Oct. 30, 2000, which is a continuation-in-part of U.S. patent application Ser. No. 09/519,240, filed Mar. 6, 2000; and U.S. Provisional Application No. 60/276,456, filed Mar. 16, 2001; and is further related to applications filed concurrently herewith, entitled “Wavelength Monitor Utilizing a Tunable Bragg Grating and Blazed Grating”, CiDRA Docket Number CC-0324; and, “Large Diameter Optical Waveguide Having a Blazed Grating Therein”, CiDRA Docket Number CC-0439, all of which are incorporated herein by reference in their entirety.