Claims
- 1. A multi-channel tunable filter comprising:
a three-dimensional filter material; and one or more gratings recorded into said three-dimensional filter material wherein each of said gratings is configured to reflect a given wavelength of a light wave and wherein each of said gratings covers a vertical portion of said three-dimensional filter material.
- 2. The filter of claim 1 wherein said three-dimensional filter material is a holographic material.
- 3. The filter of claim 2 wherein said holographic material is Lithium Niobate.
- 4. The filter of claim 1 wherein said three-dimensional filter material is a thin-film filter material wherein each of said gratings is configured to reflect all wavelengths of a light wave except a given wavelength.
- 5. The filter of claim 1 further comprising:
an optical read-head configured to move in a hitless manner between said gratings.
- 6. The filter of claim 5 wherein said hitless manner comprises:
moving said optical read-head in a first vertical direction with respect to a face of said three-dimensional filter material; moving said optical read-head in a horizontal direction with respect to said face of said three-dimensional filter material; and moving said optical read-head in a second vertical direction with respect to said face of said three-dimensional filter material.
- 7. The filter of claim 1 further comprising:
a fixed optical read-head wherein said filter is configured to move in a hitless manner when said fixed optical read-head reads from different gratings.
- 8. The filter of claim 7 wherein said hitless manner comprises:
moving said filter in a first vertical direction with respect to said optical read-head whereby said optical read-head points to said face of said three-dimensional filter material at a new position; moving said filter in a horizontal direction with respect to said optical read-head whereby said optical read-head points to said face of said three-dimensional filter material at a new position; and moving said filter in a second vertical direction with respect to said optical read-head whereby said optical read-head points to said face of said three-dimensional filter material at a new position.
- 9. The filter of claim 5 wherein said optical read-head further comprises:
a single fiber collimator and a dual fiber collimator.
- 10. The filter of claim 9 further comprising:
a first optical fiber attached to said dual fiber collimator, and a second optical fiber attached to said single fiber collimator.
- 11. The filter of claim 5 wherein said optical read-head further comprises:
two dual fiber collimators.
- 12. The filter of claim 11 further comprising:
a first optical fiber attached to one of said dual fiber collimators; and a second optical fiber attached to another one of said dual fiber collimators.
- 13. The filter of claim 1 wherein said gratings are placed in a continuously varying spacing arrangement.
- 14. The filter of claim 1 wherein a multiple of said gratings are superimposed at the same location wherein multiple wavelengths are filtered.
- 15. A method for using a multi-channel tunable filter comprising:
moving an optical read-head in a first vertical direction with respect to a face of a three-dimensional filter material comprising one or more gratings recorded onto said three-dimensional filter material wherein each of said gratings is configured to reflect a given wavelength of a light wave and wherein each of said gratings covers a vertical portion of said three-dimensional filter material; moving said optical read-head in a horizontal direction with respect to said face of said three-dimensional filter material; and moving said optical read-head in a second vertical direction with respect to said face of said three-dimensional filter material.
- 16. The method of claim 15 wherein said three-dimensional filter material is a holographic material.
- 17. The method of claim 16 wherein said holographic material is Lithium Niobate.
- 18. The method of claim 15 wherein said three-dimensional filter material is a thin-film filter material wherein each of said gratings is configured to reflect all wavelengths of a light wave except a given wavelength.
- 19. The method of claim 15 wherein said optical read-head is fixed and said filter is configured to move in a hitless manner when said fixed optical read-head reads from different gratings.
- 20. The method of claim 19 wherein said hitless manner comprises:
moving said filter in a first vertical direction with respect to said optical read-head whereby said optical read-head points to said face of said three-dimensional filter material at a new position; moving said filter in a horizontal direction with respect to said optical read-head whereby said optical read-head points to said face of said three-dimensional filter material at a new position; and moving said filter in a second vertical direction with respect to optical read-head whereby said optical read-head points to said face of said three-dimensional filter material at a new position.
- 21. The method of claim 15 wherein said optical read-head further comprises:
a single fiber collimator and a dual fiber collimator.
- 22. The method of claim 21 further comprising:
attaching a first optical fiber to said dual fiber collimator, and attaching a second optical fiber to said single fiber collimator.
- 23. The method of claim 15 wherein said optical read-head further comprises:
two dual fiber collimators.
- 24. The method of claim 23 further comprising:
attaching a first optical fiber to one of said dual fiber collimators; and attaching a second optical fiber to another of said dual fiber collimators.
- 25. A method for recording gratings comprising:
reflecting a first beam off a first mirror stack; reflecting a second beam off a second mirror stack; and producing an interference between reflection of said first beam and reflection of said second beam wherein said interference etches in a recording material to form said gratings.
- 26. The method of claim 25 wherein said recording material is a holographic material.
- 27. The method of claim 26 wherein said holographic material is Lithium Niobate.
- 28. A method for recording gratings comprising:
using a multiple channel phase mask to direct a first order beam of said phase mask at a recording material; using said phase mask to direct a second order beam of said phase mask at a recording material; and producing an interference pattern between said first beam and said second beam wherein said phase mask optically induces a perturbation on the index of refraction in a recording material to form said gratings.
- 29. The method of claim 28 wherein said recording material is a holographic material.
- 30. The method of claim 29 wherein said holographic material is Lithium Niobate.
- 31. The method of claim 28 wherein said phase mask is used in a far field approach to form said gratings on said recording material.
- 32. The method of claim 28 wherein said phase mask is used in a near field approach to form said gratings on said recording material.
- 33. The method of claim 32 further comprises placing an interference filter between said phase mask and said recording material wherein said interference filter reflects zero order beams.
- 34. The method of claim 33 further comprises placing an optical diode between said phase mask and said interference filter.
RELATED APPLICATION
[0001] The applicant claims priority to provisional patent application No. 60/251,350 filed Dec. 4, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60251350 |
Dec 2000 |
US |