DOI: 10.1017/s0022377826102384 ISSN: 0022-3778
Effect of small magnetic fields on stimulated Raman scattering in the kinetic regime
Roman P. Lee, Benjamin Winjum, S.J. Spencer, Simon Bolaños, Mathieu Bailly-Grandvaux, Mario J.-E. Manuel, Frank S. Tsung, Farhat Beg, Warren B. Mori
Results from one- and two-dimensional particle-in-cell simulations – both of nonlinear electron plasma waves (EPWs) and of self-consistent stimulated Raman scattering (SRS) – are shown that explore effects of small magnetic fields (
omega Subscript c Baseline divided by omega Subscript p Baseline much less than 1
ω
c
/
ω
p
≪
1
$\omega _c / \omega _p \ll 1$
) oriented perpendicular to the direction of laser propagation on SRS across a range of laser intensities of relevance to inertial fusion energy. The magnetic field effect is strongly intensity dependent. The magnetic field raises the threshold for kinetic inflation and can suppress SRS entirely at intensities just above the unmagnetised threshold. At intermediate intensities, it reduces time-averaged reflectivity by factors of approximately two to three in one dimension. Far above threshold the suppressive effect largely disappears, and the reflectivity becomes comparable to, or modestly greater than, its unmagnetised value. Nevertheless, the instability retains distinct signatures in the presence of the magnetic field. The magnetic field promotes the detrapping of resonant electrons, enhances EPW damping, limits distribution-function flattening and the associated nonlinear frequency shift, and thereby produces a more regular recurrence of SRS bursts. Multi-dimensional effects weaken the contrast in EPW damping through transverse localisation and wavefront effects, but preserve the same qualitative intensity dependence and changes in recurrence behaviour. These results delimit the regime in which small transverse magnetic fields mitigate kinetic SRS and show that time-averaged reflectivity alone does not fully characterise their influence on the instability.