Collisionless relativistic magnetic reconnection driven by electron vortices in laser-plasma interaction

Yan-Jun Gu , Kirill V. Lezhnin , Sergei V. Bulanov
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Abstract

Magnetic reconnection (MR) is a fundamental process in space and laboratory plasmas. The appearance of high power lasers opens a new way to investigate MR under the relativistic condition. In this paper, relativistic collisionless MR driven by two ultra-intense lasers and a pair of asymmetric targets is studied numerically via the kinetic simulations. The static magnetic fields produced by the electron vortex structures with opposite magnetic polarities approach each other driven by the magnetic pressure and the density gradient. The antiparallel magnetic fields annihilate accompanied with the topological variation and the corresponding magnetic field energy is being dissipated to the kinetic energy of the nonthermal charged particles. Besides the outflows along the current sheet, a fast particle bunch is accelerated perpendicularly contributed by the displacement current.

激光等离子体相互作用中电子涡旋驱动的无碰撞相对论性磁重联
磁重联是空间等离子体和实验室等离子体中的一个基本过程。高功率激光器的出现为研究相对论条件下的磁共振开辟了一条新的途径。本文通过动力学模拟,对两个超强激光和一对非对称目标驱动的相对论无碰撞磁共振进行了数值研究。由具有相反磁极性的电子涡旋结构产生的静态磁场在磁压力和密度梯度的驱动下相互接近。反平行磁场随拓扑变化而湮灭,相应的磁场能量耗散为非热带电粒子的动能。除了沿着电流片的流出之外,位移电流还垂直加速了快速粒子束。
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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