Spatial intermittency of particle distribution in relativistic plasma turbulence
Abstract
Relativistic magnetically dominated turbulence is an efficient engine for particle acceleration in a collisionless plasma. Ultrarelativistic particles accelerated by interactions with turbulent fluctuations form non-thermal power-law distribution functions in the momentum (or energy) space, , where is the Lorenz factor. We argue that in addition to exhibiting non-Gaussian distributions over energies, particles energized by relativistic turbulence also become highly intermittent in space. Based on particle-in-cell numerical simulations and phenomenological modeling, we propose that the bulk plasma density has log-normal statistics, while the density of the accelerated particles, , has a power-law distribution function, . We argue that the scaling exponents are related as , which is broadly consistent with numerical simulations. Non-space-filling, intermittent distributions of plasma density and energy fluctuations may have implications for plasma heating and for radiation produced by relativistic turbulence.
Keywords
Cite
@article{arxiv.2304.11000,
title = {Spatial intermittency of particle distribution in relativistic plasma turbulence},
author = {Cristian Vega and Stanislav Boldyrev and Vadim Roytershteyn},
journal= {arXiv preprint arXiv:2304.11000},
year = {2023}
}
Comments
10 pages, 5 figures. Accepted for publication in ApJ. Updated to match final ApJ version