Self-absorption of synchrotron radiation in a laser-irradiated plasma

T. Blackburn, A. Macleod, A. Ilderton, B. King, Suo Tang, Mattias Marklund
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引用次数: 5

Abstract

Electrons at the surface of a plasma that is irradiated by a laser with intensity in excess of $10^{23}~\mathrm{W}\mathrm{cm}^{-2}$ are accelerated so strongly that they emit bursts of synchrotron radiation. Although the combination of high photon and electron density and electromagnetic field strength at the plasma surface makes particle-particle interactions possible, these interactions are usually neglected in simulations of the high-intensity regime. Here we demonstrate an implementation of two such processes: photon absorption and stimulated emission. We show that, for plasmas that are opaque to the laser light, photon absorption would cause complete depletion of the multi-keV region of the synchrotron photon spectrum, unless compensated by stimulated emission. Our results motivate further study of the density dependence of QED phenomena in strong electromagnetic fields.
激光辐照等离子体中同步辐射的自吸收
等离子体表面的电子被强度超过$10^{23}~\ mathm {W}\ mathm {cm}^{-2}$的激光照射时,会被强烈加速,从而发出同步辐射爆发。虽然等离子体表面的高光子和电子密度与电磁场强度的结合使粒子-粒子相互作用成为可能,但这些相互作用在高强度状态的模拟中通常被忽略。在这里,我们演示了两个这样的过程的实现:光子吸收和受激发射。我们表明,对于激光不透明的等离子体,光子吸收将导致同步加速器光子光谱的多kev区域完全耗尽,除非通过受激发射来补偿。我们的结果激发了对强电磁场中QED现象的密度依赖性的进一步研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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