High-efficiency, continuous-wave Raman lasers
- 1 May 1999
- journal article
- Published by Optica Publishing Group in Journal of the Optical Society of America B
- Vol. 16 (5) , 717-721
- https://doi.org/10.1364/josab.16.000717
Abstract
A modified steady-state laser theory that describes a continuous wave (cw) off-resonant Raman laser with asymmetric reflectivities for the cavity is presented. This theory takes into account different mirror reflectivities of the front and back mirrors of the Raman laser cavity for both the pump and the Stokes wavelengths. An off-resonant cw Raman laser pumped at 795 nm in diatomic hydrogen (H2) is modeled by use of the results of the steady-state theory. The predicted threshold for the cw Raman laser is 2.4 mW, and a maximum Stokes photon conversion efficiency of 83.0% is predicted for a pump power of 9.9 mW. The high Stokes photon conversion efficiency is obtained with mismatched pump-wavelength reflectivities of the front and the back mirrors of the laser cavity. By a judicious choice of mirror reflectivities, both the backreflected pump power and the transmitted pump power can be minimized, thus making a maximum amount of pump power available for nonlinear Stokes conversion.Keywords
This publication has 11 references indexed in Scilit:
- Performance and design of an off-resonant continuous-wave Raman laserJournal of the Optical Society of America B, 1998
- Continuous-wave Raman laser in H_2Optics Letters, 1998
- Sodium Raman laser: direct measurements of the narrow-band Raman gainOptics Letters, 1992
- Measurement of Raman gain coefficients of hydrogen, deuterium, and methaneIEEE Journal of Quantum Electronics, 1988
- Generation of nanosecond infrared pulses tunable from 28 to 16 μm by efficient stimulated electronic Raman scatteringApplied Optics, 1987
- Gain and noise characteristics of a continuous-wave Raman laserOptics Letters, 1987
- Temperature dependence of the Raman linewidth and line shift for the Q(1) and Q(0) transitions in normal and para-Physical Review A, 1986
- Stimulated rotational Raman scattering in CO2-pumped para-H2IEEE Journal of Quantum Electronics, 1983
- Efficient tunable H2 Raman laserApplied Physics Letters, 1979
- The Stimulated Raman EffectAmerican Journal of Physics, 1967