The application of quasi-phase-matched parametric light sources to practical infrared chemical sensing systems

Applied Physics B - Tập 75 - Trang 317-327 - 2002
T.J. Kulp1, S.E. Bisson1, R.P. Bambha1, T.A. Reichardt1, U.-B. Goers1, K.W. Aniolek1, D.A.V. Kliner1, B.A. Richman1, K.M. Armstrong1, R. Sommers1, R. Schmitt1, P.E. Powers2, O. Levi3, T. Pinguet3, M. Fejer3, J.P. Koplow4, L. Goldberg4, T.G. McRae5
1Sandia National Laboratories, Livermore, CA 94550-0969, USA, , US
2Department of Physics, University of Dayton, Dayton, OH 45469-2314, USA, , US
3E.L. Ginzton Laboratory, Stanford University, Stanford, CA 94305, USA, , US
4Naval Research Laboratory, Washington, DC 20375-5672, USA, , US
5Laser Imaging Systems, Punta Gorda, FL 33983, USA, , US

Tóm tắt

Quasi-phase-matched (QPM) materials allow the generation of spectroscopically useful infrared radiation in an efficient and broadly tunable format. Here, we describe several applications of QPM-based light sources to remote and local chemical sensing. The remote systems are gas imagers that employ a fiber-pumped continuous-wave optical parametric oscillator or a microlaser-pumped, diode-seeded optical parametric amplifier as the illumination source. Technology described for local sensing includes a cavity ring down spectrometer that employs a novel optical parametric generator–amplifier to achieve ≥350 cm-1 of contiguous tuning and a long-wave infrared light source based on QPM GaAs. In each case the use of QPM materials in conjunction with effective pump sources instills simplicity and ruggedness into the sensing systems.