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

  • L. J. Chen
  • , S. Wang
  • , L. B. Wilson
  • , S. Schwartz
  • , N. Bessho
  • , T. Moore
  • , D. Gershman
  • , B. Giles
  • , D. Malaspina
  • , F. D. Wilder
  • , R. E. Ergun
  • , M. Hesse
  • , H. Lai
  • , C. Russell
  • , R. Strangeway
  • , R. B. Torbert
  • , F. A. Vinas
  • , J. Burch
  • , S. Lee
  • , C. Pollock
  • J. Dorelli, W. Paterson, N. Ahmadi, K. Goodrich, B. Lavraud, O. Le Contel, Yu V. Khotyaintsev, P. A. Lindqvist, S. Boardsen, H. Wei, A. Le, L. Avanov

Research output: Contribution to journalArticlepeer-review

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.

Original languageEnglish
Article number225101
JournalPhysical Review Letters
Volume120
Issue number22
DOIs
Publication statusPublished - 31 May 2018

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