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Femtosecond dynamics of energetic electrons in high intensity laser-matter interactions

机译:高能激光与物质相互作用中高能电子的飞秒动力学

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摘要

Highly energetic electrons are generated at the early phases of the interaction of short-pulse high-intensity lasers with solid targets. These escaping particles are identified as the essential core of picosecond-scale phenomena such as laser-based acceleration, surface manipulation, generation of intense magnetic fields and electromagnetic pulses. Increasing the number of the escaping electrons facilitate the late time processes in all cases. Up to now only indirect evidences of these important forerunners have been recorded, thus no detailed study of the governing mechanisms was possible. Here we report, for the first time, direct time-dependent measurements of energetic electrons ejected from solid targets by the interaction with a short-pulse high-intensity laser. We measured electron bunches up to 7 nanocoulombs charge, picosecond duration and 12 megaelectronvolts energy. Our ’snapshots’ capture their evolution with an unprecedented temporal resolution, demonstrat- ing a significant boost in charge and energy of escaping electrons when increasing the geometrical target curvature. These results pave the way toward significant improvement in laser acceleration of ions using shaped targets allowing the future development of small scale laser-ion accelerators.
机译:高能电子是在短脉冲高强度激光与固体靶相互作用的早期产生的。这些逃逸的粒子被确定为皮秒级现象的必要核心,例如基于激光的加速度,表面操纵,强磁场和电磁脉冲的产生。在所有情况下,增加逃逸电子的数量有助于后期过程。到目前为止,仅记录了这些重要先行者的间接证据,因此尚无法对治理机制进行详细研究。在这里,我们首次报告了通过与短脉冲高强度激光相互作用,从固体靶中射出的高能电子的直接时间相关测量。我们测量了最多7纳库仑电荷,皮秒持续时间和12兆电子伏特能量的电子束。我们的“快照”以前所未有的时间分辨率捕获了它们的演化,证明了当增加几何目标曲率时逃逸电子的电荷和能量有了显着提高。这些结果为使用整形靶显着改善离子的激光加速铺平了道路,从而使小规模激光离子加速器的未来发展成为可能。

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