Oblique instability and electron acceleration in relativistic unmagnetized cloud-plasma interaction
arXiv:1811.09797 · doi:10.1063/1.5051681
Abstract
Relativistic unmagnetized cloud-plasma interaction is analyzed by performing linear analysis and particle-in-cell simulation. This course consists of an electron-ion cloud injected into a stationary ambient plasma and has long been a favorite topic in laboratory and space plasmas. An oblique electromagnetic instability dominates the unstable spectrum. In the interaction with the generated electromagnetic fields, the cloud electrons are entirely mixed with the ambient ones and form a hot electron population. The velocity of the cloud ions, however, has not changed significantly from the initial bulk velocity. As this ion cloud propagates into the plasma, it derives an electrostatic field which can accelerate the electrons up to energy equipartition between electrons and ions. The electrostatic field is amplified at the expense of the kinetic energy of ions, and its spatial scale is in order of the electron skin depth. The electron acceleration in such an electrostatic field is, therefore, a likely process for pre-acceleration of electrons in unmagnetized plasmas.
11 pages, 8 figures, accepted for publication in Physics of Plasmas
References in corpus (8)
- Particle acceleration in relativistic collisionless shocks: Fermi process at last?
- Non-Thermal Electron Acceleration in Low Mach Number Collisionless Shocks. I. Particle Energy Spectra and Acceleration Mechanism
- The Origin of the Prompt Emission for Short GRB 170817A: Photosphere Emission or Synchrotron Emission?
- Nonlinear particle acceleration and thermal particles in GRB afterglows
- Particle-in-cell simulations of particle energization via shock drift acceleration from low Mach number quasi-perpendicular shocks in solar flares
- Particle-in-cell simulations of particle energization from low Mach number fast mode shocks
- A Study of the Early-stage Evolution of Relativistic Electron-Ion Shock using 3D PIC Simulations
- The baryon loading effect on relativistic astrophysical jet transport in the interstellar medium