论文标题

探测横梁血浆碰撞中的强场QED

Probing strong-field QED in beam-plasma collisions

论文作者

Matheron, A., Claveria, P. San Miguel, Ariniello, R., Ekerfelt, H., Fiuza, F., Gessner, S., Gilljohann, M. F., Hogan, M. J., Keitel, C. H., Knetsch, A., Litos, M., Mankovska, Y., Montefiori, S., Nie, Z., O'Shea, B., Peterson, J. R., Storey, D., Wu, Y., Xu, X., Zakharova, V., Davoine, X., Gremillet, L., Tamburini, M., Corde, S.

论文摘要

激光和加速器技术的持续进展为高场科学开辟了新的可能性,特别是研究在很大程度上未开发的强场量子电动力学(SFQED)制度中,可以直接从光 - 马特或什至光效相互作用中创建电子质子对。还提出了无激光策略,例如梁梁碰撞,以访问SFQED的非扰动极限。在这里,我们报告了一个概念,可以利用高电荷,超偏移性电子束和实体导电目标之间的相互作用来探测SFQQ。撞击目标表面时,束自场会根据梁的形状而部分或完全反射。在梁电子的其余框架中,这些磁场可以超过施温格场,从而触发SFQED效应,例如量子非线性逆Compton散射和非线性Breit-wheeler电子 - 旋转型生成。通过减少的建模和动力学数值模拟,我们表明,这种单光束设置可以达到与梁梁碰撞中所设想的相似的相互作用条件,但是由于梁和驾驶场的自动重叠,以更简单,更可控制的方式。因此,该方案放松了对SFQED的精确研究的方式,也是对非扰动SFQED无激光研究的有希望的里程碑。

Ongoing progress in laser and accelerator technology opens new possibilities in high-field science, notably to investigate the largely unexplored strong-field quantum electrodynamics (SFQED) regime where electron-positron pairs can be created directly from light-matter or even light-vacuum interactions. Laserless strategies such as beam-beam collisions have also been proposed to access the nonperturbative limit of SFQED. Here we report on a concept to probe SFQED by harnessing the interaction between a high-charge, ultrarelativistic electron beam and a solid conducting target. When impinging onto the target surface, the beam self fields are reflected, partly or fully, depending on the beam shape; in the rest frame of the beam electrons, these fields can exceed the Schwinger field, thus triggering SFQED effects such as quantum nonlinear inverse Compton scattering and nonlinear Breit-Wheeler electron-positron pair creation. Through reduced modeling and kinetic numerical simulations, we show that this single-beam setup can achieve interaction conditions similar to those envisioned in beam-beam collisions, but in a simpler and more controllable way owing to the automatic overlap of the beam and driving fields. This scheme thus eases the way to precision studies of SFQED and is also a promising milestone towards laserless studies of nonperturbative SFQED.

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