Studied of injected particle trajectories in the beat wave accelerator

R. Williams, C. Clayton, C. Joshi, W. Leemans, K. Marsh, T. Katsouleas, W. Mori
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Abstract

The trajectories of relativistic electrons ( gamma =4), injected into the potentials of three-dimensional relativistic plasma waves ( gamma /sub ph/=13.5), have been calculated using Monte Carlo simulation techniques in order to predict quantitatively the output of laser plasma beatwave acceleration experiments. The calculations have permitted the analysis of accelerated (and decelerated) electrons according to the quantity of electrons accelerated, the angular distribution, and the energy spectrum. The calculations have also guided the modification of the electron detection system in order to optimize electron transport and maximize detection efficiency. The radial fields (focusing and defocusing) and longitudinal fields (accelerating and decelerating) that result in the number of electrons accelerated being several orders of magnitude lower than the number injected have been analyzed. The angular distribution of accelerated electrons as a function of final electron energy has been predicted, as well as the final energy spectrum and how it depends on the accelerating-field-accelerating-length product. The maximum electron energy gain possible using a CO/sub 2/ laser running on 9.6- and 10.3- mu m wavelengths has been compared with the practical energy limit defined by the experimental limits of the machine.<>
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热波加速器中注入粒子轨迹的研究
为了定量预测激光等离子体脉冲加速实验的输出,利用蒙特卡罗模拟技术计算了注入三维相对论等离子体波(伽马/亚ph/=13.5)势中的相对论电子(γ =4)的运动轨迹。这些计算允许根据加速电子的数量、角度分布和能谱来分析加速(和减速)电子。计算还指导了电子探测系统的改进,以优化电子传递和最大化探测效率。分析了导致加速电子数比注入电子数低几个数量级的径向场(聚焦和离焦)和纵向场(加速和减速)。已经预测了加速电子的角分布作为最终电子能量的函数,以及最终能谱以及它如何依赖于加速场-加速长度积。在9.6 μ m和10.3 μ m波长上运行的CO/sub /激光器可能获得的最大电子能量增益已与机器的实验极限所确定的实际能量极限进行了比较。
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