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Two-dimensional simulations of laser–plasma interaction and hot electron generation in the context of shock-ignition research

O Klimo, J Psikal, V T Tikhonchuk, S Weber2014年Plasma Physics and Controlled FusionIF 2.2出版社

Laser–plasma interaction and hot electron generation play a crucial role in the context of inertial confinement fusion and in particular in the shock-ignition concept. Here we present a fully kinetic large-scale two-dimensional simulation studying laser–plasma interaction and hot electron generation in a relatively long and hot coronal plasma. The simulation shows saturation of the reflectivity of an intense spike pulse and absorption taking place close to a quarter critical density in particular, due to cavitation and stimulated Raman scattering. The signatures of steady two-plasmon decay are observed, but the hot electron number produced by this instability is low in comparison with the other two processes. The spectral and angular distribution of the back-scattered light is presented and the energy and angular characteristics of hot electrons due to individual absorption processes are studied.

日本語訳

レーザー・プラズマ相互作用と高温電子の生成は、慣性核融合、特に衝撃波点火方式において重要な役割を果たす。本稿では、比較的長く高温のコロナプラズマにおけるレーザー・プラズマ相互作用と高温電子の生成を研究するため、完全運動論的かつ大規模な二次元シミュレーションを提示する。シミュレーションは、強いスパイクパルスの反射率の飽和と、4分の1臨界密度付近でのキャビテーションと誘導ラマン散乱による吸収を示す。定常的な二プラズモン崩壊の特徴が観測されるが、この不安定性によって生成される高温電子の数は、他の2つの過程と比較して少ない。後方散乱光のスペクトルおよび角度分布を示し、個々の吸収過程による高温電子のエネルギーおよび角度特性を研究する。

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IgnitionLaser plasmaLaser-plasma interactionHot electrons
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