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Magnetospheric Multiscale Observations of an Ion Diffusion Region With Large Guide Field at the Magnetopause: Current System, Electron Heating, and Plasma Waves

  • M. Zhou
  • , J. Berchem
  • , R. J. Walker
  • , M. El-Alaoui
  • , M. L. Goldstein
  • , G. Lapenta
  • , X. Deng
  • , J. Li
  • , O. Le Contel
  • , D. B. Graham
  • , B. Lavraud
  • , W. R. Paterson
  • , B. L. Giles
  • , J. L. Burch
  • , R. B. Torbert
  • , C. T. Russell
  • , R. J. Strangeway
  • , C. Zhao
  • , R. E. Ergun
  • , P. A. Lindqvist
  • G. Marklund
  • University of California, Los Angeles
  • Institute of Geophysics and Planetary Physics, University of California
  • NASA Goddard Space Flight Center
  • Space Science Institute
  • KU Leuven
  • Nanchang University
  • Swedish Institute of Space Physics
  • IRAP/CNRS
  • Southwest Research Institute
  • University of New Hampshire
  • University of Colorado Boulder
  • KTH Royal Institute of Technology

Research output: Contribution to journalArticlepeer-review

46 Citations (Scopus)

Abstract

We report Magnetospheric Multiscale (MMS) observations of a reconnecting current sheet in the presence of a weak density asymmetry with large guide field at the dayside magnetopause. An ion diffusion region (IDR) was detected associated with this current sheet. Parallel current dominated over the perpendicular current in the IDR, as found in previous studies of component reconnection. Electrons were preferentially heated parallel to the magnetic field within the IDR. The heating was manifested as a flattop distribution below 400 eV. Two types of electromagnetic electron whistler waves were observed within the regions where electrons were heated. One type of whistler wave was associated with nonlinear structures in E|| with amplitudes up to 20 mV/m. The other type was not associated with any structures in E||. Poynting fluxes of these two types of whistler waves were directed away from the X-line. We suggest that the nonlinear evolution of the oblique whistler waves gave rise to the solitary structures in E||. There was a perpendicular super-Alfvénic outflow jet that was carried by magnetized electrons. Intense electrostatic lower hybrid drift waves were localized in the current sheet center and were probably driven by the super-Alfvénic electron jet, the velocity of which was approximately equal to the diamagnetic drift of demagnetized ions. Our observations suggest that the guide field significantly modified the structures (Hall electromagnetic fields and current system) and wave properties in the IDR.

Original languageEnglish
Pages (from-to)1834-1852
Number of pages19
JournalJournal of Geophysical Research: Space Physics
Volume123
Issue number3
DOIs
Publication statusPublished - 1 Mar 2018

Keywords

  • dayside magnetopause
  • guide field
  • ion diffusion region
  • magnetic reconnection
  • plasma waves

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