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

dc.contributor.authorChien, Abraham
dc.contributor.authorGao, Lan
dc.contributor.authorZhang, Shu
dc.contributor.authorJi, Hantao
dc.contributor.authorFrench, Omar
dc.contributor.authoret al
dc.date.accessioned2022-03-01T15:56:02Z
dc.date.available2022-03-01T15:56:02Z
dc.date.issued2023-01-16
dc.descriptionAuthors:- 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 Takizawaen_US
dc.description.abstractMagnetic 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.en_US
dc.description.sponsorshipThis work was supported by the LaserNetUS program and the High Energy Density Laboratory Plasma Science program by Office of Science, Fusion Energy Sciences (FES) and NNSA under Grant No. DE-SC0020103. The authors express their gratitude to General Atomics, the University of Michigan, and the Laboratory for Laser Energetics (LLE) for target fabrication, and to the OMEGA and OMEGA EP crews for experimental and technical support. The work was also supported by DOE Grant GR523126 and NSF Grant PHY 2020249.en_US
dc.description.urihttps://www.nature.com/articles/s41567-022-01839-xen_US
dc.format.extent13 pagesen_US
dc.genrejournal articlesen_US
dc.identifierdoi:10.13016/m2tgty-yvuk
dc.identifier.urihttps://doi.org/10.1038/s41567-022-01839-x
dc.identifier.urihttp://hdl.handle.net/11603/24337
dc.language.isoen_USen_US
dc.relation.isAvailableAtThe University of Maryland, Baltimore County (UMBC)
dc.relation.ispartofUMBC Physics Department Collection
dc.relation.ispartofUMBC Student Collection
dc.rightsThis work was written as part of one of the author's official duties as an Employee of the United States Government and is therefore a work of the United States Government. In accordance with 17 U.S.C. 105, no copyright protection is available for such works under U.S. Law.en_US
dc.rightsPublic Domain Mark 1.0*
dc.rights.urihttp://creativecommons.org/publicdomain/mark/1.0/*
dc.titleNon-thermal electron acceleration from magnetically driven reconnection in a laboratory plasmaen_US
dc.typeTexten_US
dcterms.creatorhttps://orcid.org/0000-0001-6155-2827en_US

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