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A computational investigation of the impact of aberrated Gaussian laser pulses on electron beam properties in laser-wakefield acceleration experiments

机译:激光-尾场加速实验中畸变高斯激光脉冲对电子束性能影响的计算研究

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摘要

Critical to the performance of any future accelerator based on the laser wakefield accelerator is the response of the system to perturbations from ideal. In this paper, we use particle-in-cell simulation using a modified version of the OSIRIS 2.0 framework to demonstrate that comatic optical aberrations in a nominally Gaussian laser pulse are self-corrected by the plasma response, leading to stable propagation and therefore little variation in peak energy, energy spread, or peak current of the accelerated bunch, even for serious aberrations. However, the comatic aberration does lead to enhanced transverse beam emittance in the direction of the coma. Although this may be deleterious to the performance of an accelerator, one useful outcome is that the increased oscillation amplitude of electrons in the wake structure may lead to increased synchrotron radiation emission, which would be partially polarized in the direction of coma.
机译:对于任何未来基于激光尾波加速器的加速器,其性能至关重要的是系统对理想干扰的响应。在本文中,我们使用OSIRIS 2.0框架的改进版本进行的单元中粒子模拟,以证明名义上的高斯激光脉冲中的彗形光学像差可以通过等离子体响应进行自我校正,从而导致稳定的传播并因此几乎没有变化峰值能量,能量散布或加速束的峰值电流,即使出现严重像差也是如此。但是,彗形像差的确会导致沿昏迷方向的横向光束发射增强。尽管这可能对加速器的性能有害,但一个有用的结果是,尾流结构中电子的振荡幅度增加可能导致同步加速器辐射的发射增加,而同步辐射的发射将在昏迷方向上部分极化。

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