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激光产生等离子体中磁化无碰撞激波前驱体中粒子动力学的直接观测

Direct Observations of Particle Dynamics in Magnetized Collisionless Shock Precursors in Laser-Produced Plasmas.

作者信息

Schaeffer D B, Fox W, Follett R K, Fiksel G, Li C K, Matteucci J, Bhattacharjee A, Germaschewski K

机构信息

Department of Astrophysical Sciences, Princeton University, Princeton, New Jersey 08540, USA.

Princeton Plasma Physics Laboratory, Princeton, New Jersey 08543, USA.

出版信息

Phys Rev Lett. 2019 Jun 21;122(24):245001. doi: 10.1103/PhysRevLett.122.245001.

Abstract

We present the first laboratory observations of time-resolved electron and ion velocity distributions in magnetized collisionless shock precursors. Thomson scattering of a probe laser beam was used to observe the interaction of a laser-driven, supersonic piston plasma expanding through an ambient plasma in an external magnetic field. From the Thomson-scattered spectra we measure time-resolved profiles of electron density, temperature, and ion flow speed, as well as spatially resolved magnetic fields from proton radiography. We observe direct evidence of the coupling between piston and ambient plasmas, including the acceleration of ambient ions driven by magnetic and pressure gradient electric fields, and deformation of the piston ion flow, key steps in the formation of magnetized collisionless shocks. Even before a shock has fully formed, we observe strong density compressions and electron heating associated with the pileup of piston ions. The results demonstrate that laboratory experiments can probe particle velocity distributions relevant to collisionless shocks, and can complement, and in some cases overcome, the limitations of similar measurements undertaken by spacecraft missions.

摘要

我们展示了在磁化无碰撞激波前驱体中时间分辨电子和离子速度分布的首次实验室观测结果。利用探测激光束的汤姆逊散射来观测在外部磁场中,由激光驱动的超音速活塞等离子体通过周围等离子体的膨胀过程。从汤姆逊散射光谱中,我们测量电子密度、温度和离子流速的时间分辨剖面,以及通过质子射线照相得到的空间分辨磁场。我们观测到活塞等离子体与周围等离子体耦合的直接证据,包括由磁场和压力梯度电场驱动的周围离子的加速,以及活塞离子流的变形,这些都是磁化无碰撞激波形成过程中的关键步骤。甚至在激波完全形成之前,我们就观测到与活塞离子堆积相关的强烈密度压缩和电子加热。结果表明,实验室实验能够探测与无碰撞激波相关的粒子速度分布,并且可以补充,在某些情况下克服航天器任务中类似测量的局限性。

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