Non-thermal electron acceleration from magnetically driven reconnection in a laboratory plasma

被引:0
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作者
Abraham Chien
Lan Gao
Shu Zhang
Hantao Ji
Eric G. Blackman
William Daughton
Adam Stanier
Ari Le
Fan Guo
Russ Follett
Hui Chen
Gennady Fiksel
Gabriel Bleotu
Robert C. Cauble
Sophia N. Chen
Alice Fazzini
Kirk Flippo
Omar French
Dustin H. Froula
Julien Fuchs
Shinsuke Fujioka
Kenneth Hill
Sallee Klein
Carolyn Kuranz
Philip Nilson
Alexander Rasmus
Ryunosuke Takizawa
机构
[1] Princeton University,Department of Astrophysical Sciences
[2] Princeton Plasma Physics Laboratory,Department of Physics and Astronomy
[3] Princeton University,undefined
[4] University of Rochester,undefined
[5] Laboratory for Laser Energetics,undefined
[6] University of Rochester,undefined
[7] Los Alamos National Laboratory,undefined
[8] Lawrence Livermore National Laboratory,undefined
[9] University of Michigan,undefined
[10] ELI-NP,undefined
[11] ‘Horia Hulubei’ National Institute for Physics and Nuclear Engineering,undefined
[12] University of Bucharest,undefined
[13] Faculty of Physics,undefined
[14] LULI-CNRS,undefined
[15] CEA,undefined
[16] UPMC Univ Paris 06: Sorbonne Université,undefined
[17] École Polytechnique,undefined
[18] Institut Polytechnique de Paris,undefined
[19] University of Maryland,undefined
[20] Baltimore County,undefined
[21] Institute of Laser Engineering,undefined
[22] Osaka University,undefined
来源
Nature Physics | 2023年 / 19卷
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摘要
Magnetic reconnection rapidly converts magnetic energy into some combination of plasma flow energy, thermal energy and non-thermal energetic particles. Various reconnection acceleration mechanisms have been theoretically proposed and numerically studied in different collisionless and low-β environments, where β refers to the plasma-to-magnetic pressure ratio. These mechanisms include Fermi acceleration, betatron acceleration, parallel electric field acceleration along magnetic fields and direct acceleration by the reconnection electric field. However, none of them have been experimentally confirmed, as the direct observation of non-thermal particle acceleration in laboratory experiments has been difficult due to short Debye lengths for in situ measurements and short mean free paths for ex situ measurements. Here we report the direct measurement of accelerated non-thermal electrons from magnetically driven reconnection at low β in experiments using a laser-powered capacitor coil platform. We use kilojoule lasers to drive parallel currents to reconnect megagauss-level magnetic fields in a quasi-axisymmetric geometry. The angular dependence of the measured electron energy spectrum and the resulting accelerated energies, supported by particle-in-cell simulations, indicate that the mechanism of direct electric field acceleration by the out-of-plane reconnection electric field is at work. Scaled energies using this mechanism show direct relevance to astrophysical observations.
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页码:254 / 262
页数:8
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