Studying the Mirror Acceleration via Kinetic Simulations of Relativistic Plasma Turbulence

Abstract Efficient relativistic turbulent acceleration of particles is indicated by recent astrophysical observations. The acceleration mechanism due to temporal variations of magnetic field strengths (“Type II mechanism”) remains underexplored. The mirror acceleration has recently been proposed as an efficient Type II mechanism for particle energization in turbulence-compressed magnetic fields. We perform a 3D particle-in-cell simulation of pair plasma to extend its study to relativistic turbulence. By tracking individual particles, we see that the particles interacting with transverse magnetic mirrors can have a significant energy gain during one mirror interaction and within one gyro-orbit. As expected for the mirror acceleration, we statistically find that the momentum gain is preferentially in the direction perpendicular to the local magnetic field and positively correlated with the local magnetic field strengthening. As a result, the particle pitch angle distribution becomes increasingly anisotropic toward higher energies, with a concentration at large pitch angles. The mirror acceleration facilitates the spatial confinement of particles by stochastically increasing their pitch angles, which further enhances the mirror acceleration.

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Publication Details

Journal
The Astrophysical Journal
Published
2026-09-24
DOI
https://doi.org/10.3847/1538-4357/ae9d7b
Primary Topic
Solar and Space Plasma Dynamics
Type
article
Field-Weighted Citation Impact
0.00

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article

Studying the Mirror Acceleration via Kinetic Simulations of Relativistic Plasma Turbulence

Joonas Nättilä, Saikat Das, Siyao Xu
The Astrophysical Journal
Solar and Space Plasma Dynamics
article

Studying the Mirror Acceleration via Kinetic Simulations of Relativistic Plasma Turbulence

Joonas Nättilä, Saikat Das, Siyao Xu
article en

Abstract

Abstract Efficient relativistic turbulent acceleration of particles is indicated by recent astrophysical observations. The acceleration mechanism due to temporal variations of magnetic field strengths (“Type II mechanism”) remains underexplored. The mirror acceleration has recently been proposed as an efficient Type II mechanism for particle energization in turbulence-compressed magnetic fields. We perform a 3D particle-in-cell simulation of pair plasma to extend its study to relativistic turbulence. By tracking individual particles, we see that the particles interacting with transverse magnetic mirrors can have a significant energy gain during one mirror interaction and within one gyro-orbit. As expected for the mirror acceleration, we statistically find that the momentum gain is preferentially in the direction perpendicular to the local magnetic field and positively correlated with the local magnetic field strengthening. As a result, the particle pitch angle distribution becomes increasingly anisotropic toward higher energies, with a concentration at large pitch angles. The mirror acceleration facilitates the spatial confinement of particles by stochastically increasing their pitch angles, which further enhances the mirror acceleration.

The Astrophysical JournalVol. 1009(2)
University of Helsinki (FI), University of Florida (US)
National Aeronautics and Space Administration, Nuclear Safety and Security Commission
Openalex Percentile: Top 99%
Solar and Space Plasma Dynamics
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Studying the Mirror Acceleration via Kinetic Simulations of Relativistic Plasma Turbulence — Joonas Nättilä, Saikat Das, et al. · The Astrophysical Journal (2026) | TGRS Research Map | TGRS