English

Particle acceleration by magnetic reconnection in geospace

Space Physics 2023-07-24 v2 Earth and Planetary Astrophysics Plasma Physics

Abstract

Particles are accelerated to very high, non-thermal energies during explosive energy-release phenomena in space, solar, and astrophysical plasma environments. While it has been established that magnetic reconnection plays an important role in the dynamics of Earth's magnetosphere, it remains unclear how magnetic reconnection can further explain particle acceleration to non-thermal energies. Here we review recent progress in our understanding of particle acceleration by magnetic reconnection in Earth's magnetosphere. With improved resolutions, recent spacecraft missions have enabled detailed studies of particle acceleration at various structures such as the diffusion region, separatrix, jets, magnetic islands (flux ropes), and dipolarization front. With the guiding-center approximation of particle motion, many studies have discussed the relative importance of the parallel electric field as well as the Fermi and betatron effects. However, in order to fully understand the particle acceleration mechanism and further compare with particle acceleration in solar and astrophysical plasma environments, there is a need for further investigation of, for example, energy partition and the precise role of turbulence.

Keywords

Cite

@article{arxiv.2307.01376,
  title  = {Particle acceleration by magnetic reconnection in geospace},
  author = {Mitsuo Oka and Joachim Birn and Jan Egedal and Fan Guo and Robert E. Ergun and Drew L. Turner and Yuri Khotyaintsev and Kyoung-Joo Hwang and Ian J. Cohen and James F. Drake},
  journal= {arXiv preprint arXiv:2307.01376},
  year   = {2023}
}

Comments

Submitted to Space Science Reviews; Revised on July 21, 2023