Claims
- 1. An optical system, comprising
a source of radiation, an optical time-division multiplexer receiving radiation from said source, a plurality of optical channels optically coupled to said multiplexer, at least one of said optical channels having a non-linear optical element, and a controller in communication with said multiplexer, for each of a plurality of time intervals, said controller causing the multiplexer to shift said received radiation to a selected one of said optical channels.
- 2. The optical system of claim 1, wherein said radiation source generates a plurality of temporally separated optical pulses.
- 3. The optical system of claim 2, wherein said multiplexer deflects each of said pluses to a selected one of said optical channels based on an arrival time of said pulse at said multiplexer.
- 4. The optical system of claim 1, further comprising a plurality of detectors, each of said detectors being optically coupled to one of said channels to detect radiation transmitted therethrough.
- 5. The optical system of claim 1, wherein at least one of said non-linear optical elements comprises a second harmonic frequency doubler.
- 6. The optical system of claim 1, further comprising a beam combiner optically coupled to said optical channels so as to direct light transmitted through any of said channels into a common direction, thereby generating a combined beam.
- 7. The optical system of claim 6, further comprising a detector optically coupled to said beam combiner to detect said combined beam.
- 8. The optical system of claim 1, wherein said radiation source comprises a laser.
- 9. The optical system of claim 1, wherein said multiplexer comprises
an addressable dispersive element, and a plurality of beam shaping arrays optically coupled to said dispersive elements, for each of said plurality of time intervals, the dispersive element deflecting radiation from said source into one of said beam shaping arrays to generate an output beam for coupling into one of said optical channels.
- 10. The optical system of claim 9, wherein said addressable dispersive element comprises any of an acousto-optic deflector or a reflecting grating.
- 11. A method of distributing radiation to a plurality of optical channels, at least one of which includes a non-linear optical element, comprising
directing the radiation to an optical time-division multiplexer configured to divert the radiation, for each of a plurality of time intervals, into one of said optical channels so as to generate a plurality of optical pulses each traveling through one of said optical channels and each having a peak intensity substantially equal to a peak intensity of the radiation incident on the multiplexer.
- 12. The method of claim 11, further comprising selecting the non-linear elements to be frequency doublers.
- 13. The method of claim 12, further comprising re-directing each of said pulses traveling through said optical channels into a common optical path.
- 14. The method of claim 11, further comprising detecting said pulses along said common optical path.
- 15. The method of claim 14, wherein said detecting step further comprises utilizing a photo-electric detector to detect said pulses.
- 16. A multi-wavelength fluorescence spectrometer, comprising
a first non-linear element disposed in one of said optical channels for operating on radiation propagating in said channel to generate a first excitation beam at a frequency higher than said fundamental frequency, at least one additional non-linear element disposed in another one of said optical channels for operating on said radiation propagating in said another channel to generate at least one additional excitation beam at a frequency higher than said fundamental frequency and different than that of the first excitation beam, and optical means operatively coupled to said non-linear elements to direct said excitation beams onto a sample to elicit fluorescence radiaition therefrom.
- 17. The multi-wavelength fluorescence spectrometer of claim 16, further comprising a sample holder for holding said sample in an illumination path of said excitation beams.
- 18. The multi-wavelength spectrometer of claim 16, wherein said first non-linear element comprises a non-linear third harmonic generator.
- 19. The multi-wavelength spectrometer of claim 18, wherein said additional non-linear element comprises a non-linear fourth harmonic generator.
- 20. The multi-wavelength spectrometer of claim 18, wherein said additional non-linear element comprises a non-linear fifth harmonic generator.
- 21. The multi-wavelength spectrometer of claim 17, further comprising a first lens for optically coupling said combined beam into said sample holder.
- 22. The multi-wavelength spectrometer of claim 21, further comprising a second lens for collecting at least a portion of fluorescence radiation emitted by said sample in response to illumination by said combined beam and a portion of radiation scattered by said sample, if any, having wavelength components corresponding to those of the combined excitation beam.
- 23. The multi-wavelength spectrometer of claim 22, further comprising a filter optically coupled to said second lens to operate on radiation collected by said second lens to substantially remove wavelength components corresponding to said combined excitation beam, thereby generating a fluorescence beam.
- 24. The multi-wavelength spectrometer of claim 23, further comprising a grating receiving said fluorescence beam and dispersing wavelength components of said fluorescence beam.
- 25. The multi-wavelength spectrometer of claim 24, further comprising a photodetector optically coupled to said grating to detect said wavelength components of said fluorescence beam.
- 26. The multi-wavelength spectrometer of claim 25, further comprising a processing electronics module electrically coupled to said photodetector for analyzing said detected fluorescence radiation.
- 27. The multi-wavelength spectrometer of claim 26, wherein said processing module measures fluorescence lifetime and fluorescence intensity.
- 28. The multi-wavelength spectrometer of claim 27, wherein said light source transmits a timing signal to said processing module indicative of initiation of excitation of said sample for enabling fluorescence lifetime and intensity measurements.
- 29. The multi-wavelength spectrometer of claim 16, wherein said optical means comprises a beam combiner.
RELATED APPLICATIONS
[0001] The present application claims priority to a provisional application having a Serial No. 60/385,368, filed on Jun. 3, 2002, and herein incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60385368 |
Jun 2002 |
US |