Superfast precipitation of energetic electrons in the radiation belts of the Earth

Author:

Zhang Xiao-JiaORCID,Artemyev AntonORCID,Angelopoulos VassilisORCID,Tsai EthanORCID,Wilkins ColinORCID,Kasahara SatoshiORCID,Mourenas DidierORCID,Yokota ShoichiroORCID,Keika Kunihiro,Hori Tomoaki,Miyoshi YoshizumiORCID,Shinohara IkuORCID,Matsuoka Ayako

Abstract

AbstractEnergetic electron precipitation from Earth’s outer radiation belt heats the upper atmosphere and alters its chemical properties. The precipitating flux intensity, typically modelled using inputs from high-altitude, equatorial spacecraft, dictates the radiation belt’s energy contribution to the atmosphere and the strength of space-atmosphere coupling. The classical quasi-linear theory of electron precipitation through moderately fast diffusive interactions with plasma waves predicts that precipitating electron fluxes cannot exceed fluxes of electrons trapped in the radiation belt, setting an apparent upper limit for electron precipitation. Here we show from low-altitude satellite observations, that ~100 keV electron precipitation rates often exceed this apparent upper limit. We demonstrate that such superfast precipitation is caused by nonlinear electron interactions with intense plasma waves, which have not been previously incorporated in radiation belt models. The high occurrence rate of superfast precipitation suggests that it is important for modelling both radiation belt fluxes and space-atmosphere coupling.

Funder

National Aeronautics and Space Administration

National Science Foundation

United States Department of Defense | United States Air Force | AFMC | Air Force Office of Scientific Research

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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