Plasmoid ejection and secondary current sheet generation from magnetic reconnection in laser-plasma interaction

Reconnection of the self-generated magnetic fields in laser-plasma interaction was first investigated experimentally by Nilson et al. [Phys. Rev. Lett. 97, 255001 (2006)] by shining two laser pulses a distance apart on a solid target layer. An elongated current sheet (CS) was observed in the plasma...

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Published in:Physical review letters Vol. 108; no. 21; p. 215001
Main Authors: Dong, Quan-Li, Wang, Shou-Jun, Lu, Quan-Ming, Huang, Can, Yuan, Da-Wei, Liu, Xun, Lin, Xiao-Xuan, Li, Yu-Tong, Wei, Hui-Gang, Zhong, Jia-Yong, Shi, Jian-Rong, Jiang, Shao-En, Ding, Yong-Kun, Jiang, Bo-Bin, Du, Kai, He, Xian-Tu, Yu, M Y, Liu, C S, Wang, Shui, Tang, Yong-Jian, Zhu, Jian-Qiang, Zhao, Gang, Sheng, Zheng-Ming, Zhang, Jie
Format: Journal Article
Language:English
Published: United States 22-05-2012
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Summary:Reconnection of the self-generated magnetic fields in laser-plasma interaction was first investigated experimentally by Nilson et al. [Phys. Rev. Lett. 97, 255001 (2006)] by shining two laser pulses a distance apart on a solid target layer. An elongated current sheet (CS) was observed in the plasma between the two laser spots. In order to more closely model magnetotail reconnection, here two side-by-side thin target layers, instead of a single one, are used. It is found that at one end of the elongated CS a fanlike electron outflow region including three well-collimated electron jets appears. The (>1 MeV) tail of the jet energy distribution exhibits a power-law scaling. The enhanced electron acceleration is attributed to the intense inductive electric field in the narrow electron dominated reconnection region, as well as additional acceleration as they are trapped inside the rapidly moving plasmoid formed in and ejected from the CS. The ejection also induces a secondary CS.
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ISSN:0031-9007
1079-7114
DOI:10.1103/physrevlett.108.215001