Direct measurement of non-thermal electron acceleration from magnetically driven reconnection in a laboratory plasma
Abstract
Magnetic reconnection is a ubiquitous astrophysical process that rapidly converts magnetic energy into some combination of plasma flow energy, thermal energy, and non-thermal energetic particles, including energetic electrons. Various reconnection acceleration mechanisms in different low- (plasma-to-magnetic pressure ratio) and collisionless environments have been proposed theoretically and studied numerically, including first- and second-order 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 heretofore confirmed experimentally, as the direct observation of non-thermal particle acceleration in laboratory experiments has been difficult due to short Debye lengths for \textit{in-situ} measurements and short mean free paths for \textit{ex-situ} measurements. Here we report the direct measurement of accelerated non-thermal electrons from low- magnetically driven reconnection 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. Our results therefore validate one of the proposed acceleration mechanisms by reconnection, and establish a new approach to study reconnection particle acceleration with laboratory experiments in relevant regimes.
Keywords
Cite
@article{arxiv.2201.10052,
title = {Direct measurement of non-thermal electron acceleration from magnetically driven reconnection in a laboratory plasma},
author = {Abraham Chien and Lan Gao and Shu Zhang and Hantao Ji and Eric G. Blackman and William Daughton and Adam Stanier and Ari Le and Fan Guo and Russ Follett and Hui Chen and Gennady Fiksel and Gabriel Bleotu and Robert C. Cauble and Sophia N. Chen and Alice Fazzini and Kirk Flippo and Omar French and Dustin H. Froula and Julien Fuchs and Shinsuke Fujioka and Kenneth Hill and Sallee Klein and Carolyn Kuranz and Philip Nilson and Alexander Rasmus and Ryunosuke Takizawa},
journal= {arXiv preprint arXiv:2201.10052},
year = {2023}
}
Comments
13 pages, 6 figures