Claims
- 1. An optical device for demultiplexing an optical signal having a plurality of channels, the optical signal propagating in free space in a first direction, comprising a plurality of narrow band reflective filters linearly disposed along an optical axis extending in said first direction, each narrow band reflective filter reflecting a single one of said plurality of channels and being tilted with respect to said optical axis such that the reflected channel is directed away from the optical axis to an output, each narrow band reflective filter being substantially transparent to the remaining channels of the optical signal and allowing a remainder of the optical signal to proceed therethrough along said optical axis, said optical device being robust against tilt variations in said narrow band reflective filters because said tilt variations have minimal impact on the direction of said remainder of the optical signal passing therethrough.
- 2. The optical device of claim 1, wherein each narrow band reflective filter is tilted less than 45 degrees with respect to said optical axis.
- 3. The optical device of claim 2, wherein each narrow band reflective filter is tilted less than 30 degrees with respect to said optical axis.
- 4. The optical device of claim 3, wherein said narrow band reflective filters are dielectric thin film filters.
- 5. The optical device of claim 3, wherein said narrow band reflective filters are holographic filters.
- 6. The optical device of claim 1, said optical signal comprising channels λ1λ2 . . . λN, said optical device comprising N such narrow band reflective filters, one for each channel, an ith narrow band reflective filter reflecting the channel λi and being substantially transparent to the other channels λ1λ2 . . . λi−1λi+1 . . . λN.
- 7. The optical device of claim 6, further comprising N photodetectors associated respectively with said N narrow band reflective filters, each photodetector being positioned to receive at least a portion of the energy of the channel reflected from its associated narrow band reflective filter.
- 8. The optical device of claim 6, said optical device being configured to receive N separate replacement optical signals λ1′, λ2′, . . . , λN′ at wavelengths corresponding to channels λ1, λ2, . . . , λN, respectively, each replacement optical signal λi′ impinging upon the ith narrow band reflective filter at an angle of 180 degrees from the channel λi output beam, said remainder of the optical signal passing through the ith narrow band reflective filter being reflectively appended with the optical signal λi′ to comprise channels λ1′λ2′ . . . λi′λi+1λλ1i+2 . . . λN, the optical signal passing out of the Nth narrow band reflective filter in said first direction comprising the replacement channels λ1′λ2′ . . . λN′.
- 9. The optical device of claim 6, said optical device operative as a multiplexer when provided at said outputs with separate optical signals at wavelengths λ1, λ2, . . . λN, a multiplexed signal λ1λ2 . . . λN propagating in a second direction opposite said first direction from said first narrow band reflective filter.
- 10. The optical device of claim 6, wherein said channels λ1λ2 . . . λN are at successive adjacent wavelengths such that λ1<λ2<λ3 . . . . <λN or λ1>λ2>λ3 . . . . >λN.
- 11. An apparatus for demultiplexing an input optical signal carrying a plurality of channels, comprising:
a splitting device for dividing the input optical signal into a plurality of distinct free-space sub-beams, each sub-beam also carrying said plurality of channels; and for each sub-beam, a distinct narrow band reflective filter array, said narrow band reflective filter array comprising a plurality of narrow band reflective filters linearly disposed along an optical axis extending in a direction of propagation of said sub-beam, each narrow band reflective filter reflecting a distinct one of said plurality of channels and being tilted with respect to said optical axis such that the reflected channel is directed away from the optical axis to an output, each narrow band reflective filter being substantially transparent to the remaining channels of the sub-beam and allowing a remainder of the sub-beam to proceed therethrough along said optical axis, said optical device being robust against tilt variations in said narrow band reflective filters because said tilt variations have minimal impact on the direction of said remainder of the sub-beam passing therethrough.
- 12. The apparatus of claim 11, wherein said splitting device divides the input optical signal substantially equally among said sub-beams, and wherein said plurality of narrow band reflective filter arrays each have roughly the same number of narrow band reflective filters.
- 13. The apparatus of claim 12, wherein all of said narrow band reflective filters reflect approximately the same percent “R” of the energy of their associated reflected wavelength, and wherein all of said narrow band reflective filters transmit approximately the same percent “T” of the energy of the remaining channels of the sub-beam.
- 14. The apparatus of claim 13, said input optical signal comprising “N” channels, said splitting device dividing the input optical signal into “m” sub-beams, each of said plurality of narrow band reflective filter arrays having roughly the same number “n” of narrow band reflective filters, wherein “n” is approximately equal to N/m.
- 15. The apparatus of claim 14, each of said sub-beams having an optical energy inversely proportional to the number of sub-beams “m”, and wherein “m” is equal to an optimal value mopt that minimizes the overall attenuation of the final output channel of each narrow band reflective filter array in view of (i) the attenuation caused by the splitting of the input optical signal into “m” sub-beams, and (ii) the attenuation of a given sub-beam as it propagates through the approximately n=N/m narrow band reflective filters in its respective narrow band reflective filter array.
- 16. The apparatus of claim 15, wherein mopt is computed as being roughly equal to N/nopt, and wherein nopt is determined by maximizing the expression nTn with respect to n.
- 17. The apparatus of claim 16, wherein nopt is approximately equal to (−1n T)−1.
- 18. The apparatus of claim 11, wherein the number of sub-beams corresponds to a value that minimizes the overall attenuation of a weakest output of any narrow band reflective filter in view of (i) the attenuation caused by the splitting of the input optical signal into that number of sub-beams, and (ii) the attenuation of a given sub-beam as it propagates through the narrow band reflective filters in its respective narrow band reflective filter array.
- 19. An apparatus for extracting one or more channel groups from a light beam carrying a plurality of wavelength division multiplexed (WDM) channels, comprising:
a first filter positioned along a path of the light beam, the first filter reflectively forming a first output beam comprising a first group of channels from the light beam, the first filter having a surface normal that forms a first angle with the light beam path such that the first output beam forms twice said first angle with the light beam path, the first filter transmitting a first remainder of the light beam therethrough with a substantially unchanged trajectory; a second filter positioned along the light beam path to receive said first remainder, the second filter reflectively forming a second output beam comprising a second group of channels from said first remainder, the second filter having a surface normal that forms a second angle with the light beam path such that the second output beam forms twice said second angle with the light beam path, the second filter transmitting a second remainder of the light beam therethrough with a substantially unchanged trajectory; and a third filter positioned along the light beam path to receive said second remainder, the third filter reflectively forming a third output beam comprising a third group of channels from said second remainder, the third filter having a surface normal that forms a third angle with the light beam path such that the third output beam forms twice said third angle with the light beam path.
- 20. The apparatus of claim 19, wherein said first, second, and third angles are each less than 45 degrees.
- 21. The apparatus of claim 20, wherein said first, second, and third angles are each less than 30 degrees.
- 22. The apparatus of claim 19, said plurality of WDM channels including successive adjacent channels at λ1<λ2<λ3 . . . <λN, wherein said first group of channels comprises j<N successive adjacent channels λ1λ2 . . . λj, and wherein said second group of channels comprises k<(N−j) successive adjacent channels λj+1λj+2 . . . λj+k.
- 23. The apparatus of claim 19, said plurality of WDM channels including successive adjacent channels at λ1<λ2<λ3 . . . <λN, wherein said first group of channels comprises the single channel λ1, wherein said second group of channels comprises the single channel λ2, and wherein said third group of channels comprises the single channel λ3.
- 24. The apparatus of claim 19, wherein said first, second, and third filters are holographic filters.
- 25. The a pparatus of claim 24, wherein each of said holographic filters is dynamically tunable.
- 26. The apparatus of claim 19, wherein said first, second, and third filters are dielectric thin film filters.
- 27. The apparatus of claim 26, each of said dielectric thin film filters having a refractive index that varies sinusoidally with depth.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of Provisional Application Ser. No 60/282,760, filed Apr. 10, 2001, which is incorporated by reference herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60282760 |
Apr 2001 |
US |