Inclusion of Nonresonant Effects Into Quasi‐Linear Diffusion Rates for Electron Scattering by Electromagnetic Ion Cyclotron Waves

Author:

Shi Xiaofei1ORCID,An Xin1ORCID,Artemyev Anton1ORCID,Zhang Xiao‐Jia12ORCID,Mourenas Didier34ORCID,Angelopoulos Vassilis1ORCID

Affiliation:

1. Department of Earth, Planetary, and Space Sciences University of California Los Angeles CA USA

2. Department of Physics University of Texas at Dallas Richardson TX USA

3. CEA DAM DIF Arpajon France

4. Laboratoire Matière en Conditions Extrêmes Université Paris‐Saclay CEA Bruyères‐le‐Châtel France

Abstract

AbstractElectromagnetic ion cyclotron (EMIC) waves are a key plasma mode affecting radiation belt dynamics. These waves are important for relativistic electron losses through scattering and precipitation into Earth's ionosphere. Although theoretical models of such resonant scattering predict a low‐energy cut‐off of ∼1 MeV for precipitating electrons, observations from low‐altitude spacecraft often show simultaneous relativistic and sub‐relativistic electron precipitation associated with EMIC waves. Recently, nonresonant electron scattering by EMIC waves has been proposed as a possible solution to the above discrepancy. We employ this model and a large database of EMIC waves to develop a universal treatment of electron interactions with EMIC waves, including nonresonant effects. We use the Green's function approach to generalize EMIC diffusion rates foregoing the need to modify existing codes or recompute empirical wave databases. Comparison with observations from the electron losses and fields investigation mission demonstrates the efficacy of the proposed method for explaining sub‐relativistic electron losses by EMIC waves.

Funder

National Aeronautics and Space Administration

National Science Foundation

Air Force Office of Scientific Research

California Wildlands Grassroots Fund

Publisher

American Geophysical Union (AGU)

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