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Study of relativistic electron beam production and transport in high-intensity laser interaction with a wire target by integrated LSP modeling

机译:利用积分Lsp建模研究高强度激光与线靶相互作用的相对论电子束产生和传输

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摘要

The results of a numerical study of high-intensity short-pulse laser interaction with wire targets are presented. Fast electron production and transport in solid density plasma is modeled using the implicit hybrid particle-in-cell code LSP [D. R. Welch et al., Phys. Plasmas 13, 063105 (2006)]. These simulations were performed with realistic target size and laser parameters and over times much longer than the laser pulse. Nonlinear interaction processes, i.e., microchanneling and density steepening, have been observed. The spectrum of the relativistic electrons produced has a reduced slope temperature compared to that predicted by ponderomotive scaling. Preformed underdense plasma has been found to bottleneck fast electrons due to the intense magnetic fields generated near the critical surface. In a thin long wire target, the overall propagation length of the fast electrons is about 160 mu m; however, surface fields guide a small fraction of electrons to longer distances. These results are in good agreement with the experiments and have demonstrated that the modeling of electron transport relevant to fast ignition can be pursued in an integrated manner. (C) 2008 American Institute of Physics.
机译:提出了高强度短脉冲激光与线靶相互作用的数值研究结果。使用隐式混合单元格内粒子代码LSP [D.建模在固体密度等离子体中的快速电子产生和传输。 R.Welch等,Phys。 Plasmas 13,063105(2006)]。这些仿真是在实际目标尺寸和激光参数的情况下进行的,而且时间比激光脉冲长得多。已经观察到非线性相互作用过程,即微通道和密度陡增。与通过惯性定标所预测的相比,所产生的相对论电子的光谱具有降低的斜率温度。由于在临界表面附近产生的强磁场,已发现预先形成的稀疏等离子体使快速电子成为瓶颈。在细的长线靶中,快电子的总传播长度约为160微米。然而,表面场将一小部分电子引导到更长的距离。这些结果与实验吻合得很好,并且证明了可以快速地进行与快速点火有关的电子传输的建模。 (C)2008美国物理研究所。

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