Radiation and Polarization Signatures from Magnetic Reconnection in Relativistic Jets--I. A Systematic Study
Haocheng Zhang (1), Xiaocan Li (2), Dimitrios Giannios (1), Fan Guo, (3), Yi-Hsin Liu (2), Lingyi Dong (1) ((1) Purdue University, (2) Dartmouth, College, (3) Los Alamos National Lab)

TL;DR
This systematic study uses simulations to explore radiation and polarization signatures from magnetic reconnection in blazar jets, revealing key polarization behaviors and their dependence on magnetic field configurations.
Contribution
It provides the first comprehensive analysis of polarization signatures from magnetic reconnection in blazars using combined PIC and radiation transfer simulations.
Findings
Higher-frequency bands flare earlier than lower-frequency bands.
Polarization variability increases with frequency.
Large polarization angle rotations indicate nearly anti-parallel magnetic fields.
Abstract
Blazars are relativistic magnetized plasma outflows from supermassive black holes that point very close to our line of sight. Their emission is nonthermal dominated and highly variable across the entire electromagnetic spectrum. Relativistic magnetic reconnection has been proposed as the driver of particle acceleration during blazar flares. While recent particle-in-cell simulations have self-consistently studied the evolution of magnetic reconnection and particle acceleration therein, the resulting radiation signatures have not been systematically explored. In particular, the polarization signatures, which directly reflect the characteristic strongly dynamical magnetic field evolution during reconnection, have not been carefully investigated. In this paper, we present a systematic study of radiation and polarization signatures arising from magnetic reconnection in blazars, based on…
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