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超快激光驱动等离子体膨胀过程中的 Weibel 不稳定性丝状化。

Weibel-induced filamentation during an ultrafast laser-driven plasma expansion.

机构信息

Centre for Plasma Physics, School of Mathematics and Physics, The Queen's University of Belfast, Belfast BT7 1NN, United Kingdom.

出版信息

Phys Rev Lett. 2012 Mar 30;108(13):135001. doi: 10.1103/PhysRevLett.108.135001. Epub 2012 Mar 26.

Abstract

The development of current instabilities behind the front of a cylindrically expanding plasma has been investigated experimentally via proton probing techniques. A multitude of tubelike filamentary structures is observed to form behind the front of a plasma created by irradiating solid-density wire targets with a high-intensity (I ~ 10(19) W/cm(2)), picosecond-duration laser pulse. These filaments exhibit a remarkable degree of stability, persisting for several tens of picoseconds, and appear to be magnetized over a filament length corresponding to several filament radii. Particle-in-cell simulations indicate that their formation can be attributed to a Weibel instability driven by a thermal anisotropy of the electron population. We suggest that these results may have implications in astrophysical scenarios, particularly concerning the problem of the generation of strong, spatially extended and sustained magnetic fields in astrophysical jets.

摘要

通过质子探测技术,我们对圆柱形等离子体膨胀前沿后电流不稳定性的发展进行了实验研究。人们发现,当用高强度(I~10(19) W/cm(2))、皮秒持续时间的激光脉冲辐照固体密度线靶时,在等离子体的前沿后面会形成大量管状丝状结构。这些丝状结构表现出显著的稳定性,持续数十皮秒,并且在对应于几个丝状半径的丝状长度上似乎被磁化。粒子模拟表明,它们的形成可以归因于电子密度热各向异性驱动的 Weibel 不稳定性。我们认为这些结果可能对天体物理场景有影响,特别是对天体物理喷流中强、空间扩展和持续磁场的产生问题有影响。

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