The origin of power-law spectra in relativistic magnetic reconnection
Hao Zhang, Lorenzo Sironi, Dimitrios Giannios, Maria Petropoulou

TL;DR
This paper introduces a new analytical model supported by 3D particle-in-cell simulations to explain the origin of power-law energy spectra in relativistic magnetic reconnection, revealing universal spectral indices relevant to astrophysical phenomena.
Contribution
The paper presents a novel analytical framework for understanding particle acceleration and power-law spectra in relativistic reconnection, validated by large-scale simulations.
Findings
Particles gain energy mainly in the inflow region.
Universal power-law spectrum with index -1 for active acceleration.
Overall particle spectrum follows a -2 power-law.
Abstract
Magnetic reconnection is often invoked as a source of high-energy particles, and in relativistic astrophysical systems it is regarded as a prime candidate for powering fast and bright flares. We present a novel analytical model - supported and benchmarked with large-scale three-dimensional particle-in-cell simulations - that elucidates the physics governing the generation of power-law energy spectra in relativistic reconnection. Particles with Lorentz factor (here, is the magnetization) gain most of their energy in the inflow region, while meandering between the two sides of the reconnection layer. Their acceleration time is , where is the inflow speed in units of the speed of light and is the…
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Taxonomy
TopicsAstrophysics and Cosmic Phenomena · Gamma-ray bursts and supernovae · Solar and Space Plasma Dynamics
