Electron Beams Generated by the Electron Kelvin‐Helmholtz Instability at a Quasi‐Perpendicular Shock

Abstract Electron beams are considered to be important free energy sources for the excitation of various plasma waves at quasi‐perpendicular shocks. In this article, we perform a two‐dimensional particle‐in‐cell simulation of a low‐plasma‐β quasi‐perpendicular shock. The magnetic field at the shock...

Full description

Saved in:
Bibliographic Details
Main Authors: Ao Guo, Quanming Lu, San Lu, Xinliang Gao, Zhongwei Yang
Format: Article
Language:English
Published: Wiley 2025-03-01
Series:Geophysical Research Letters
Online Access:https://doi.org/10.1029/2024GL114425
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1849313606245548032
author Ao Guo
Quanming Lu
San Lu
Xinliang Gao
Zhongwei Yang
author_facet Ao Guo
Quanming Lu
San Lu
Xinliang Gao
Zhongwei Yang
author_sort Ao Guo
collection DOAJ
description Abstract Electron beams are considered to be important free energy sources for the excitation of various plasma waves at quasi‐perpendicular shocks. In this article, we perform a two‐dimensional particle‐in‐cell simulation of a low‐plasma‐β quasi‐perpendicular shock. The magnetic field at the shock ramp has a large gradient, where upstream electrons and ions are separated due to their different gyro‐radius. This charge separation induces a sub‐ion scale electric field at the shock ramp. The electric drift of electrons in this field can induce an electron shear flow, resulting in the excitation of Kelvin‐Helmholtz instability and the generation of electron vortices. These vortices further cause charge separation at their centers, resulting in a large electrostatic field. The electrons trapped in these vortices can gain energy from the parallel component of the electric field, which eventually leads to field‐aligned electron beams. Our results provide a novel process for generating electron beams at low‐plasma‐β quasi‐perpendicular shocks.
format Article
id doaj-art-e33e0588cce845b3a19f65e6d22683e5
institution Kabale University
issn 0094-8276
1944-8007
language English
publishDate 2025-03-01
publisher Wiley
record_format Article
series Geophysical Research Letters
spelling doaj-art-e33e0588cce845b3a19f65e6d22683e52025-08-20T03:52:42ZengWileyGeophysical Research Letters0094-82761944-80072025-03-01525n/an/a10.1029/2024GL114425Electron Beams Generated by the Electron Kelvin‐Helmholtz Instability at a Quasi‐Perpendicular ShockAo Guo0Quanming Lu1San Lu2Xinliang Gao3Zhongwei Yang4CAS Key Lab of Geospace Environment School of Earth and Space Sciences University of Science and Technology of China Hefei ChinaCAS Key Lab of Geospace Environment School of Earth and Space Sciences University of Science and Technology of China Hefei ChinaCAS Key Lab of Geospace Environment School of Earth and Space Sciences University of Science and Technology of China Hefei ChinaCAS Key Lab of Geospace Environment School of Earth and Space Sciences University of Science and Technology of China Hefei ChinaState Key Laboratory of Solar Activity and Space Weather National Space Science Center Chinese Academy of Sciences Beijing ChinaAbstract Electron beams are considered to be important free energy sources for the excitation of various plasma waves at quasi‐perpendicular shocks. In this article, we perform a two‐dimensional particle‐in‐cell simulation of a low‐plasma‐β quasi‐perpendicular shock. The magnetic field at the shock ramp has a large gradient, where upstream electrons and ions are separated due to their different gyro‐radius. This charge separation induces a sub‐ion scale electric field at the shock ramp. The electric drift of electrons in this field can induce an electron shear flow, resulting in the excitation of Kelvin‐Helmholtz instability and the generation of electron vortices. These vortices further cause charge separation at their centers, resulting in a large electrostatic field. The electrons trapped in these vortices can gain energy from the parallel component of the electric field, which eventually leads to field‐aligned electron beams. Our results provide a novel process for generating electron beams at low‐plasma‐β quasi‐perpendicular shocks.https://doi.org/10.1029/2024GL114425
spellingShingle Ao Guo
Quanming Lu
San Lu
Xinliang Gao
Zhongwei Yang
Electron Beams Generated by the Electron Kelvin‐Helmholtz Instability at a Quasi‐Perpendicular Shock
Geophysical Research Letters
title Electron Beams Generated by the Electron Kelvin‐Helmholtz Instability at a Quasi‐Perpendicular Shock
title_full Electron Beams Generated by the Electron Kelvin‐Helmholtz Instability at a Quasi‐Perpendicular Shock
title_fullStr Electron Beams Generated by the Electron Kelvin‐Helmholtz Instability at a Quasi‐Perpendicular Shock
title_full_unstemmed Electron Beams Generated by the Electron Kelvin‐Helmholtz Instability at a Quasi‐Perpendicular Shock
title_short Electron Beams Generated by the Electron Kelvin‐Helmholtz Instability at a Quasi‐Perpendicular Shock
title_sort electron beams generated by the electron kelvin helmholtz instability at a quasi perpendicular shock
url https://doi.org/10.1029/2024GL114425
work_keys_str_mv AT aoguo electronbeamsgeneratedbytheelectronkelvinhelmholtzinstabilityataquasiperpendicularshock
AT quanminglu electronbeamsgeneratedbytheelectronkelvinhelmholtzinstabilityataquasiperpendicularshock
AT sanlu electronbeamsgeneratedbytheelectronkelvinhelmholtzinstabilityataquasiperpendicularshock
AT xinlianggao electronbeamsgeneratedbytheelectronkelvinhelmholtzinstabilityataquasiperpendicularshock
AT zhongweiyang electronbeamsgeneratedbytheelectronkelvinhelmholtzinstabilityataquasiperpendicularshock