The role of plasma instabilities in relativistic radiation-mediated shocks: stability analysis and particle-in-cell simulations

Author:

Vanthieghem A1ORCID,Mahlmann J F2ORCID,Levinson A3,Philippov A4,Nakar E3ORCID,Fiuza F1

Affiliation:

1. High Energy Density Science Division, SLAC National Accelerator Laboratory , Menlo Park, California 94025, USA

2. Department of Astrophysical Sciences, Peyton Hall, Princeton University , Princeton, NJ 08544, USA

3. School of Physics and Astronomy, Tel Aviv University , Tel Aviv 69978, Israel

4. Center for Computational Astrophysics, Flatiron Institute , 162 Fifth Avenue, New York, NY 10010, USA

Abstract

ABSTRACT Relativistic radiation-mediated shocks are likely formed in prodigious cosmic explosions. The structure and emission of such shocks are regulated by copious production of electron–positron pairs inside the shock-transition layer. It has been pointed out recently that substantial abundance of positrons inside the shock leads to a velocity separation of the different plasma constituents, which is expected to induce a rapid growth of plasma instabilities. In this paper, we study the hierarchy of plasma microinstabilities growing in an electron-ion plasma loaded with pairs and subject to a radiation force. Linear stability analysis indicates that such a system is unstable to the growth of various plasma modes which ultimately become dominated by a current filamentation instability driven by the relative drift between the ions and the pairs. These results are validated by particle-in-cell simulations that further probe the non-linear regime of the instabilities, and the pair-ion coupling in the microturbulent electromagnetic field. Based on this analysis, we derive a reduced-transport equation for the particles via pitch-angle scattering in the microturbulence and demonstrate that it can couple the different species and lead to non-adiabatic compression via a Joule-like heating. The heating of the pairs and, conceivably, the formation of non-thermal distributions, arising from the microturbulence, can affect the observed shock-breakout signal in ways unaccounted for by current single-fluid models.

Funder

US DOE

Israel Science Foundation

National Science Foundation

Simons Foundation

UCLA

IST

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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