Benchmarking magnetized three-wave coupling for laser backscattering: Analytic solutions and kinetic simulations
Yuan Shi

TL;DR
This paper benchmarks magnetized three-wave coupling coefficients in laser-plasma interactions using particle-in-cell simulations, validating warm-fluid theory predictions across various parameters and identifying kinetic effects.
Contribution
It provides a rigorous comparison between warm-fluid theory and kinetic simulations for magnetized three-wave coupling in laser backscattering.
Findings
Excellent agreement between theory and simulations for a wide parameter range.
Warm-fluid theory is valid for many conditions but kinetic effects are observed.
A systematic protocol for benchmarking theory with simulations is established.
Abstract
Understanding magnetized laser-plasma interactions is important for controlling magneto-inertial fusion experiments and developing magnetically assisted radiation and particle sources. In the long-pulse regime, interactions are dominated by coherent three-wave interactions, whose nonlinear coupling coefficients become known only recently when waves propagate at oblique angles with the magnetic field. In this paper, backscattering coupling coefficients predicted by warm-fluid theory is benchmarked using particle-in-cell simulations in one spatial dimension, and excellent agreements are found for a wide range of plasma temperatures, magnetic field strengths, and laser propagation angles, when the interactions are mediated by electron-dominant hybrid waves. Systematic comparisons between theory and simulations are made possible by a rigorous protocol: On the theory side, the initial…
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Taxonomy
TopicsLaser-induced spectroscopy and plasma · Laser-Plasma Interactions and Diagnostics · Ionosphere and magnetosphere dynamics
