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Effective production of gammas, positrons, and photonuclear particles from optimized electron acceleration by short laser pulses in low-density targets

机译:通过低密度目标的短激光脉冲优化电子加速度的γ,正源和光核颗粒的有效生产

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Electron acceleration has been optimized based on 3D particle-in-cell simulations of a short laser pulse interacting with low-density plasma targets to find the pulse propagation regime that maximizes the charge of high-energy electron bunches. This regime corresponds to laser pulse propagation in a self-trapping mode where the diffraction divergence is balanced by the relativistic nonlinearity such that relativistic self-focusing on the axis does not happen and the laser beam radius stays unchanged during pulse propagation in a plasma over many Rayleigh lengths. Such a regime occurs for a near-critical density if the pulse length considerably exceeds both the plasma wavelength and the pulse width. Electron acceleration occurs in a traveling cavity filled with a high-frequency laser field and a longitudinal electrostatic single-cycle field ("self-trapping regime"). Monte Carlo simulations demonstrated that a high electron yield allows an efficient production of gamma radiation, electron-positron pairs, neutrons, and even pions from a catcher-target.
机译:基于与低密度等离子体目标相互作用的短激光脉冲的3D粒子电池模拟已经优化了电子加速度,以找到最大化高能电子束的电荷的脉冲传播状态。该制度对应于在自捕集模式下的激光脉冲传播,其中衍射发散通过相对论的非线性平衡,使得不发生轴上的相对论自聚焦,并且激光束半径在脉冲传播期间在许多等离子体中保持不变瑞利长度。如果脉冲长度显着超过等离子体波长和脉冲宽度,则这种制度发生近临界密度。电子加速度发生在填充有高频激光场和纵向静电单循环场(“自捕集制度”)的行进腔中。 Monte Carlo模拟表明,高电子收益率允许有效地生产伽马辐射,电子 - 正电子对,中子,甚至来自捕集器靶的均匀的细菌。

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