Title :
Time-dependent phase conjugation and four-wave mixing in plasmas
Author :
Goldman, M.V. ; Williams, E.A.
Abstract :
Summary form only given. Time-dependent four-wave mixing and phase-conjugation in plasmas with counterpropagating electromagnetic pump waves are treated, taking into account resonant longitudinal plasma modes which show up in a grating Green´s function. When ponderomotive force is the dominant nonlinearity, the Green´s function is simply expressed in terms of linear quasi-longitudinal susceptibilities. The main concern has been with unmagnetized inhomogeneous plasmas, although the results are formally relevant to other nonlinearities and to magnetized plasmas in simple geometries, Response times, decay times, and thresholds for resonant absolute instabilities are found analytically, and interpreted for ion-acoustic and Langmuir wave gratings. It is found that plasma nonuniformity can speed up the response of the conjugate wave when the phase-mixing time is shorter than the damping time of a resonant grating. This could be important for applications of plasma phase conjugation to tracking fast-moving targets
Keywords :
Green´s function methods; electromagnetic wave propagation in plasma; light propagation in plasma; multiwave mixing; optical phase conjugation; plasma waves; Langmuir wave gratings; counterpropagating electromagnetic pump waves; damping time; decay times; fast-moving targets; four-wave mixing; grating Green´s function; ion-acoustic waves; linear quasi-longitudinal susceptibilities; magnetized plasmas; nonlinearity; plasma nonuniformity; ponderomotive force; resonant absolute instabilities; resonant grating; resonant longitudinal plasma modes; response time; thresholds; time-dependent phase conjugation; unmagnetized inhomogeneous plasmas;
Conference_Titel :
Plasma Science, 1990. IEEE Conference Record - Abstracts., 1990 IEEE International Conference on
Conference_Location :
Oakland, CA, USA
DOI :
10.1109/PLASMA.1990.110499