Claims
- 1. A photoacoustic spectrometer for analyzing a sample comprising:
a light source having a laser and an optical parametric oscillator (OPO) for generating a beam of an adjustable wavelength light from said laser,
where said OPO has a light path and a material with non-linear optical properties within said light path, a first tuner to vary said adjustable wavelength by modifying said non-linear optical properties within said light path, and a second tuner to vary said adjustable wavelength by modifying the oscillating frequency of said OPO; a photoacoustic cell to contain the sample and having
at least one window to accept said generated beam and irradiate a sample, and a pressure transducer adapted to provide an indication of the pressure of the sample; and a controller to scan said adjustable wavelength.
- 2. The photoacoustic spectrometer of claim 1, wherein said material is a periodically poled lithium niobate (PPLN) crystal and wherein said optical-fiber amplifier is an Ytterbium doped fiber.
- 3. The photoacoustic spectrometer of claim 2, further including a modulator in said beam to produce a periodic beam.
- 4. The photoacoustic spectrometer of claim 3, further comprising a light detector capable of determining an indication of the amplitude of said beam.
- 5. The photoacoustic spectrometer of claim 1, wherein said first tuner is an etalon within the light path of said resonant cavity.
- 6. The photoacoustic spectrometer of claim 1, wherein said first tuner changes the adjustable wavelength by mode-hopping.
- 7. The photoacoustic spectrometer of claim 1, further including a modulator in said beam to produce a periodic beam, a light detector capable of determining an indication of the amplitude of said beam, and a lock-in amplifier to receive the output of said pressure transducer and said light-measuring device and generate a signal indicative of the pressure induced in the sample by the periodic beam.
- 8. The photoacoustic spectrometer of claim 7, wherein said controller scans said adjustable wavelength, and wherein said generated lock-in amplifier signal produces an indication of the pressure induced by the sample during the scanning of said adjustable wavelength.
- 9. The photoacoustic spectrometer of claim 1, further including a reflective surface in said periodic beam to reflect said periodic beam twice through said photoacoustic cell.
- 10. The photoacoustic spectrometer of claim 1, wherein said adjustable wavelength light is adjusted by adjusting the wavelength of the laser light and by adjustments to said first or second tuners.
- 11. The photoacoustic spectrometer of claim 18, further including one or more batteries, wherein the power to operate photoacoustic spectrometer is provided by said one or more batteries.
- 12. A photoacoustic spectrometer for analyzing a sample comprising:
a light source having a laser system including a laser and an optical-fiber amplifier adapted to amplify light from said laser, and an optical parametric oscillator (OPO) for generating a beam of an adjustable wavelength light from said amplified laser, where said OPO has a light path and a material with non-linear optical properties within said light path; a photoacoustic cell to contain the sample and having at least one window to accept said generated beam and irradiate a sample, and a pressure transducer adapted to provide an indication of the pressure of the sample; and a controller to scan said adjustable wavelength.
- 13. The photoacoustic spectrometer of claim 12, wherein said non-linear optical material is a periodically poled lithium niobate (PPLN) crystal and wherein said optical-fiber amplifier is an Ytterbium doped fiber.
- 14. The photoacoustic spectrometer of claim 13, further including a modulator in said beam to produce a periodic beam.
- 15. The photoacoustic spectrometer of claim 14, further comprising a light detector capable of determining an indication of the amplitude of said beam.
- 16. The photoacoustic spectrometer of claim 13, wherein said OPO has
a first tuner to change said adjustable wavelength by modifying said light path, and a second tuner to change said adjustable wavelength by modifying said non-linear properties.
- 17. The photoacoustic spectrometer of claim 16, wherein said first tuner is an etalon within the light path of said resonant cavity.
- 18. The photoacoustic spectrometer of claim 16, wherein said first tuner changes the adjustable wavelength by mode-hopping.
- 19. The photoacoustic spectrometer of claim 16, further including a modulator in said beam to produce a periodic beam, a light detector capable of determining an indication of the amplitude of said beam, and a lock-in amplifier to receive the output of said pressure transducer and said light-measuring device and generate a signal indicative of the pressure induced in the sample by the periodic beam.
- 20. The photoacoustic spectrometer of claim 19, wherein said controller scans said adjustable wavelength, and wherein said generated lock-in amplifier signal produces an indication of the pressure induced by the sample during the scanning of said adjustable wavelength.
- 21. The photoacoustic spectrometer of claim 12, further including a reflective surface in said periodic beam to reflect said periodic beam twice through said photoacoustic cell.
- 22. The photoacoustic spectrometer of claim 16, wherein said adjustable wavelength light is adjusted by adjusting the wavelength of the laser light and by adjustments to said first or second tuners.
- 23. The photoacoustic spectrometer of claim 20, further including one or more batteries, wherein the power to operate photoacoustic spectrometer is provided by said one or more batteries.
- 24. A photoacoustic spectrometer for analyzing a sample comprising:
a light source having a laser system including a laser having an output with an adjustable wavelength of approximately 750 to approximately 900 nm and a tapered waveguide amplifier adapted to amplify light from said laser, and an optical parametric oscillator (OPO) for generating a beam of an adjustable wavelength light from said amplified laser,
where said OPO has a fixed light path and a fixed non-linear material with non-linear optical properties within said light path; a photoacoustic cell to contain the sample and having
at least one window to accept said generated beam and irradiate a sample, and a pressure transducer adapted to provide an indication of the pressure of the sample; and a controller to scan said adjustable wavelength.
- 25. The photoacoustic spectrometer of claim 24, wherein said non-linear optical material is a periodically poled lithium niobate (PPLN) crystal.
- 26. The photoacoustic spectrometer of claim 24, further including a modulator in said beam to produce a periodic beam.
- 27. The photoacoustic spectrometer of claim 26, further comprising a light detector capable of determining an indication of the amplitude of said beam.
- 28. The photoacoustic spectrometer of claim 27, further including a lock-in amplifier to receive the output of said pressure transducer and said light-measuring device and generate a signal indicative of the pressure induced in the sample by the periodic beam.
- 29. The photoacoustic spectrometer of claim 28, wherein said controller scans said adjustable wavelength, and wherein said generated lock-in amplifier signal produces an indication of the pressure induced by the sample during the scanning of said adjustable wavelength.
- 30. The photoacoustic spectrometer of claim 24, further including a reflective surface in said periodic beam to reflect said periodic beam twice through said photoacoustic cell.
Government Interests
[0001] This invention was made with Government support under contract No. DE-AC04-94AL85000 awarded by the U.S. Department of Energy to Sandia Corporation. The Government has certain rights in the invention.