Particle-acceleration mechanisms in multispecies relativistic plasmas

Fuente: arXiv
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Main Authors: Meringolo, Claudio, Imbrogno, Mario, Cruz-Osorio, Alejandro, Servidio, Sergio, Rezzolla, Luciano
Format: Preprint
Published: 2026
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_version_ 1866917391394406400
author Meringolo, Claudio
Imbrogno, Mario
Cruz-Osorio, Alejandro
Servidio, Sergio
Rezzolla, Luciano
author_facet Meringolo, Claudio
Imbrogno, Mario
Cruz-Osorio, Alejandro
Servidio, Sergio
Rezzolla, Luciano
contents While collisionless plasmas are ubiquitously present near astrophysical compact objects, the impact that their composition has on the high-energy emission is presently unknown. We present the first investigation of particle-acceleration mechanisms in kinetic, special-relativistic turbulence, modeling electrons, positrons, and protons with realistic mass ratios. Under global charge neutrality, we introduce a positron fraction and cover regimes ranging from an electron-proton plasma over to pair-dominated plasmas. Using a novel generalized Ohm's law for multispecies relativistic plasmas, we analyze particle acceleration due to electric fields in reconnection events that self-consistently emerge from turbulence. We demonstrate, for the first time, that energization occurs at reconnection current sheets driven by the divergence of the relativistic pressure tensor, which locally aligns with the particle velocity and leads to an efficient energy transfer. The imbalance between electrons and positrons systematically favors electron acceleration, highlighting the necessity of realistic multispecies modeling to capture the nonthermal contributions in accretion flows and relativistic jets from black holes.
format Preprint
id arxiv_https___arxiv_org_abs_2604_06749
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Particle-acceleration mechanisms in multispecies relativistic plasmas
Meringolo, Claudio
Imbrogno, Mario
Cruz-Osorio, Alejandro
Servidio, Sergio
Rezzolla, Luciano
High Energy Astrophysical Phenomena
Plasma Physics
While collisionless plasmas are ubiquitously present near astrophysical compact objects, the impact that their composition has on the high-energy emission is presently unknown. We present the first investigation of particle-acceleration mechanisms in kinetic, special-relativistic turbulence, modeling electrons, positrons, and protons with realistic mass ratios. Under global charge neutrality, we introduce a positron fraction and cover regimes ranging from an electron-proton plasma over to pair-dominated plasmas. Using a novel generalized Ohm's law for multispecies relativistic plasmas, we analyze particle acceleration due to electric fields in reconnection events that self-consistently emerge from turbulence. We demonstrate, for the first time, that energization occurs at reconnection current sheets driven by the divergence of the relativistic pressure tensor, which locally aligns with the particle velocity and leads to an efficient energy transfer. The imbalance between electrons and positrons systematically favors electron acceleration, highlighting the necessity of realistic multispecies modeling to capture the nonthermal contributions in accretion flows and relativistic jets from black holes.
title Particle-acceleration mechanisms in multispecies relativistic plasmas
topic High Energy Astrophysical Phenomena
Plasma Physics
url https://arxiv.org/abs/2604.06749