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The electric wind of Venus: A global and persistent “polar wind”-like ambipolar electric field sufficient for the direct escape of heavy ionospheric ions

  • Glyn A. Collinson*
  • , Rudy A. Frahm
  • , Alex Glocer
  • , Andrew J. Coates
  • , Joseph M. Grebowsky
  • , Stas Barabash
  • , Shawn D. Domagal-Goldman
  • , Andrei Fedorov
  • , Yoshifumi Futaana
  • , Lin K. Gilbert
  • , George Khazanov
  • , Tom A. Nordheim
  • , David Mitchell
  • , Thomas E. Moore
  • , William K. Peterson
  • , John D. Winningham
  • , Tielong L. Zhang
  • *Corresponding author for this work
  • NASA Goddard Space Flight Center
  • University College London
  • Catholic University of America
  • Southwest Research Institute
  • Swedish Institute of Space Physics
  • CNRS
  • Toulouse University, UPS-OMP, IRAP
  • Jet Propulsion Laboratory, California Institute of Technology
  • University of California at Berkeley
  • University of Colorado Boulder
  • Austrian Academy of Sciences

Research output: Contribution to journalArticlepeer-review

Abstract

Understanding what processes govern atmospheric escape and the loss of planetary water is of paramount importance for understanding how life in the universe can exist. One mechanism thought to be important at all planets is an “ambipolar” electric field that helps ions overcome gravity. We report the discovery and first quantitative extraterrestrial measurements of such a field at the planet Venus. Unexpectedly, despite comparable gravity, we show the field to be five times stronger than in Earth's similar ionosphere. Contrary to our understanding, Venus would still lose heavy ions (including oxygen and all water-group species) to space, even if there were no stripping by the solar wind. We therefore find that it is possible for planets to lose heavy ions to space entirely through electric forces in their ionospheres and such an “electric wind” must be considered when studying the evolution and potential habitability of any planet in any star system.

Original languageEnglish
Pages (from-to)5926-5934
Number of pages9
JournalGeophysical Research Letters
Volume43
Issue number12
DOIs
StatePublished - 2016
Externally publishedYes

Keywords

  • Venus
  • ambipolar field
  • ionospheric escape
  • polar wind
  • polarization electric field

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