Title :
Enhanced Raman scattering of a rippled laser beam in laser-plasma interaction
Author :
Saini, N.S. ; Gill, T.S.
Author_Institution :
Dept. of Phys., Guru Nanak Dev Univ., Amritsar, India
Abstract :
Summary form only given, as follows. In the laser-plasma interaction experiments, self-focusing and filamentation affect quite a large number of other parametric processes including stimulated scattering processes. It has also been experimentally observed that SRS is more prone to the nonlinearly refraction-induced enhancement in the intensity of the filaments. This situation is qualitatively well described by the ripple model [Sodha et al. Phys. Fluids Vol. 24, 1981] in which we investigate the growing interaction of the rippled laser beam with the electron plasma wave leading to enhanced Raman scattering. The rippled laser beam with initial Gaussian intensity is assumed to propagate along the externally applied static magnetic field in one of the possible modes. We consider here the non-linearity resulting from non-uniformity in heating, which leads to redistribution of the carrier. Because of modified background density, the ripple is coupled to the main beam. Nonlinear differential equations for the beam width parameters of the pump and ripple are set up and solved numerically using the Runge-Kutta method. An expression for the growth rate of the ripple is also derived. Further, the effect of the growth of the ripple on the electron plasma wave excitation is also studied. The coupling between main beam, ripple and excitation is so strong that when appropriate conditions are satisfied, the excited electron plasma wave further interacts with the rippled laser beam leading to the enhanced Raman scattering. From the computational results, it is observed that the effect of the increased intensity leads to suppression of power associated with the scattered wave. Lastly, it is also observed that increase of the externally applied magnetic field almost suppresses the scattered field.
Keywords :
Runge-Kutta methods; nonlinear differential equations; plasma density; plasma heating by laser; plasma light propagation; plasma nonlinear waves; self-focusing; stimulated Raman scattering; Raman scattered wave; Runge-Kutta method; SRS; beam width parameters; carrier redistribution; computational results; electron plasma wave; electron plasma wave excitation; enhanced Raman scattering; excited electron plasma wave; externally applied magnetic field; externally applied static magnetic field; filament intensity; filamentation; growing interaction; growth rate; heating; initial Gaussian intensity; laser-plasma interaction; laser-plasma interaction experiments; modes; modified background density; nonlinear differential equations; nonlinearity; nonlinearly refraction-induced enhancement; nonuniformity; parametric processes; power suppression; ripple model; rippled laser beam; scattered field; self-focusing; stimulated scattering processes; Electron beams; Laser beams; Laser excitation; Laser modes; Magnetic fields; Optical coupling; Optical refraction; Particle beams; Plasma waves; Raman scattering;
Conference_Titel :
Plasma Science, 2002. ICOPS 2002. IEEE Conference Record - Abstracts. The 29th IEEE International Conference on
Conference_Location :
Banff, Alberta, Canada
Print_ISBN :
0-7803-7407-X
DOI :
10.1109/PLASMA.2002.1030278