IEEE Journal of Quantum Electronics · 1994 · 34 citations · 12 references
EngineeringLaser ScienceLaser PhysicsLaser ApplicationsLaser MaterialComputational ChemistrySuper-intense LasersHigh-power LasersMethane-experimental OptimizationOptical PropertiesNumerical SimulationOptical SpectroscopyOptical PumpingPhotonicsPhysicsLaser DesignQuantum ChemistryNatural SciencesSpectroscopyRaman ConversionApplied PhysicsGas LasersTunable LasersRaman Conversion ProcessStimulated Raman EffectSpectroscopic Method
The stimulated Raman effect in methane was investigated both theoretically and experimentally. An experimental setup was used to optimize the Raman conversion of a 1.06-/spl mu/ laser source into a wavelength of 1.54 /spl mu/m in pressurized methane. Efficient conversion (up to 45% efficiency) is accomplished when using a full-resonator configuration for the Stokes wavelength. A numerical model is introduced, describing the Raman conversion process in the backward and the forward directions. Half-resonator and full-resonator configurations are studied. The results of the numerical model are in agreement with the experimental results.< <ETX xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">></ETX>
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Raman Scattering Cross Sections
C. M. Penney, L. M. Goldman, M. Lapp · Nature Physical Science · 1972 · 107 citations