Picosecond polarization-selective transient grating experiments in sodium-seeded flames
- 15 October 1991
- journal article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 95 (8) , 5775-5784
- https://doi.org/10.1063/1.461599
Abstract
Polarization-selective transient grating experiments have been used to study the subnanosecond time scale dynamics of several sodium-seeded, premixed flames. Intensity gratings (in which both excitation beams are of the same polarization) were used to determine excited-state quenching collision rates, while polarization gratings (in which the excitation beams are cross polarized) were used to measure Na diffusion constants and the rates of Na ground state magnetic sublevel population scattering collisions. In addition, the rates of scattering between the 3P1/2 and 3P3/2 excited state levels were measured using an excited state probing scheme.Keywords
This publication has 27 references indexed in Scilit:
- Picosecond time-resolved four-wave mixing experiments in sodium-seeded flamesOptics Letters, 1991
- Two-dimensional imaging of OH in flames by degenerate four-wave mixingOptics Letters, 1990
- Degenerate four-wave mixing diagnostics on OH and NH radicals in flamesApplied Physics B Laser and Optics, 1990
- Quantitative laser-induced fluorescence: Some recent developments in combustion diagnosticsApplied Physics B Laser and Optics, 1990
- Measurement of OH rotational temperatures in a flame using degenerate four-wave mixingOptics Letters, 1990
- Semiquantitative laser-induced fluorescence in flamesCombustion and Flame, 1989
- Two-dimensional phase-conjugate imaging of atomic distributions in flames by degenerate four-wave mixingOptics Letters, 1989
- Detection of OH in a flame by degenerate four-wave mixingOptics Letters, 1986
- A picosecond holographic grating approach to molecular dynamics in oriented liquid crystal filmsThe Journal of Chemical Physics, 1984
- Theory of laser-induced amplitude and phase gratings including photoselection, orientational relaxation and population kineticsOptical and Quantum Electronics, 1979