Literature DB >> 29906189

Electron Bulk Acceleration and Thermalization at Earth's Quasiperpendicular Bow Shock.

L-J Chen1,2, S Wang1,2, L B Wilson1, S Schwartz3, N Bessho1,2, T Moore1, D Gershman1, B Giles1, D Malaspina3, F D Wilder3, R E Ergun3, M Hesse4, H Lai5, C Russell5, R Strangeway5, R B Torbert6, A F-Vinas1, J Burch6, S Lee1, C Pollock7, J Dorelli1, W Paterson1, N Ahmadi3, K Goodrich3, B Lavraud8, O Le Contel9, Yu V Khotyaintsev10, P-A Lindqvist11, S Boardsen1,2, H Wei5, A Le12, L Avanov1,2.   

Abstract

Electron heating at Earth's quasiperpendicular bow shock has been surmised to be due to the combined effects of a quasistatic electric potential and scattering through wave-particle interaction. Here we report the observation of electron distribution functions indicating a new electron heating process occurring at the leading edge of the shock front. Incident solar wind electrons are accelerated parallel to the magnetic field toward downstream, reaching an electron-ion relative drift speed exceeding the electron thermal speed. The bulk acceleration is associated with an electric field pulse embedded in a whistler-mode wave. The high electron-ion relative drift is relaxed primarily through a nonlinear current-driven instability. The relaxed distributions contain a beam traveling toward the shock as a remnant of the accelerated electrons. Similar distribution functions prevail throughout the shock transition layer, suggesting that the observed acceleration and thermalization is essential to the cross-shock electron heating.

Entities:  

Year:  2018        PMID: 29906189     DOI: 10.1103/PhysRevLett.120.225101

Source DB:  PubMed          Journal:  Phys Rev Lett        ISSN: 0031-9007            Impact factor:   9.161


  3 in total

1.  Electron Kinetic Entropy across Quasi-Perpendicular Shocks.

Authors:  Martin Lindberg; Andris Vaivads; Savvas Raptis; Per-Arne Lindqvist; Barbara L Giles; Daniel Jonathan Gershman
Journal:  Entropy (Basel)       Date:  2022-05-24       Impact factor: 2.738

2.  Electron Energy Partition across Interplanetary Shocks. I. Methodology and Data Product.

Authors:  Lynn B Wilson; Li-Jen Chen; Shan Wang; Steven J Schwartz; Drew L Turner; Michael L Stevens; Justin C Kasper; Adnane Osmane; Damiano Caprioli; Stuart D Bale; Marc P Pulupa; Chadi S Salem; Katherine A Goodrich
Journal:  Astrophys J Suppl Ser       Date:  2019-07-03       Impact factor: 8.136

3.  Downstream high-speed plasma jet generation as a direct consequence of shock reformation.

Authors:  Savvas Raptis; Tomas Karlsson; Andris Vaivads; Craig Pollock; Ferdinand Plaschke; Andreas Johlander; Henriette Trollvik; Per-Arne Lindqvist
Journal:  Nat Commun       Date:  2022-02-01       Impact factor: 14.919

  3 in total

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