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Energy-Dependent Polarization Angle Variability as a Robust Diagnostic for Blazar Flaring Mechanisms

High Energy Astrophysical Phenomena 2026-04-30 v1

Abstract

Identifying the physical mechanism driving blazar flares remains a central challenge in high-energy astrophysics. We show that the energy dependence of the standard deviation of the polarization angle variability (σPA\sigma_\text{PA}) provides a powerful and robust discriminator of blazar flaring mechanisms. Using particle-in-cell-integrated polarized radiative transfer simulations, we perform to-date the most rigorous statistical analyses of polarization variability. We demonstrate that magnetic reconnection and magnetized turbulence imprint qualitatively distinct energy dependence of σPA\sigma_\text{PA} that directly reflect their different magnetic field evolution and particle transport. Reconnection predicts higher σPA\sigma_\text{PA} with higher photon energy till the synchrotron spectral peak, whereas turbulence produces nearly flat σPA\sigma_\text{PA} across the synchrotron spectral component. These trends are resilient to realistic observational limitations. Applying our results to optical and IXPE data of Mrk~421 and 1ES~1959+650, we find strong evidence for reconnection-driven flares embedded in a turbulent blazar zone. Energy-dependent σPA\sigma_\text{PA} emerges as a decisive new probe of particle acceleration in relativistic jets.

Keywords

Cite

@article{arxiv.2604.26930,
  title  = {Energy-Dependent Polarization Angle Variability as a Robust Diagnostic for Blazar Flaring Mechanisms},
  author = {Haocheng Zhang and Benjamin de Jonge and Manel Errando and Xiaocan Li and Fan Guo},
  journal= {arXiv preprint arXiv:2604.26930},
  year   = {2026}
}

Comments

15 pages, 9 figures, accepted by ApJ