论文标题

电子束 - 莫尔列碰撞中极度致密的伽马射线脉冲

Extremely Dense Gamma-Ray Pulses in Electron Beam-Multifoil Collisions

论文作者

Sampath, Archana, Davoine, Xavier, Corde, Sébastien, Gremillet, Laurent, Gilljohann, Max, Sangal, Maitreyi, Keitel, Christoph H., Ariniello, Robert, Cary, John, Ekerfelt, Henrik, Emma, Claudio, Fiuza, Frederico, Fujii, Hiroki, Hogan, Mark, Joshi, Chan, Knetsch, Alexander, Kononenko, Olena, Lee, Valentina, Litos, Mike, Marsh, Kenneth, Nie, Zan, O'Shea, Brendan, Peterson, J. Ryan, Claveria, Pablo San Miguel, Storey, Doug, Wu, Yipeng, Xu, Xinlu, Zhang, Chaojie, Tamburini, Matteo

论文摘要

高能光子的来源在几乎所有研究领域都有重要的应用。然而,对于几百keV的光子能量,现有源的光子通量和强度受到了极大的限制。在这里,我们表明,高电流的超层流电子束与多个亚微米厚度 - 导电箔相互作用,可以经历强烈的自我关注,并伴随着有效的伽马射线同步光子光子的有效发射。在物理上,自我关注和高能量光子发射来自梁的相互作用,与伴随梁翼碰撞的近场过渡辐射相互作用。这种近场辐射的幅度与梁自形相当,并且可以足够强大,以使单个发射光子可以携带很大一部分发射电子能。光束与多个箔相碰撞后,获得超过数量密度的飞秒准直的电子和光子梁。该伽马射线源的相对简单性,独特的特性和高效率为应用和基础研究开辟了新的机会,包括对具有单一电子束的强场QED过程的激光研究。

Sources of high-energy photons have important applications in almost all areas of research. However, the photon flux and intensity of existing sources is strongly limited for photon energies above a few hundred keV. Here we show that a high-current ultrarelativistic electron beam interacting with multiple submicrometer-thick conducting foils can undergo strong self-focusing accompanied by efficient emission of gamma-ray synchrotron photons. Physically, self-focusing and high-energy photon emission originate from the beam interaction with the near-field transition radiation accompanying the beam-foil collision. This near field radiation is of amplitude comparable with the beam self-field, and can be strong enough that a single emitted photon can carry away a significant fraction of the emitting electron energy. After beam collision with multiple foils, femtosecond collimated electron and photon beams with number density exceeding that of a solid are obtained. The relative simplicity, unique properties, and high efficiency of this gamma-ray source open up new opportunities for both applied and fundamental research including laserless investigations of strong-field QED processes with a single electron beam.

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