Spectral and Polarization Signatures of Relativistic Shocks in Blazars
Markus Boettcher (North-West University, South Africa)

TL;DR
This paper models relativistic shocks in blazar jets, linking particle acceleration, magnetic turbulence, and polarization to explain observed spectral and polarization features, including PA rotations and high-energy emission.
Contribution
It introduces a self-consistent model coupling shock acceleration, radiation transfer, and magnetic field effects, explaining polarization swings and spectral features in blazars.
Findings
Internal shocks with helical magnetic fields produce polarization-angle swings.
The model successfully fits multi-wavelength SEDs and polarization data of 3C279.
High-energy polarization signatures are more stable in lepto-hadronic models.
Abstract
Relativistic shocks are one of the most plausible sites of the emission of strongly variable, polarized multi-wavelength emission from relativistic jet sources such as blazars, via diffusive shock acceleration (DSA) of relativistic particles. This paper summarizes recent results on a self-consistent coupling of diffusive shock acceleration and radiation transfer in blazar jets. We demonstrate that the observed spectral energy distributions (SEDs) of blazars strongly constrain the nature of hydromagnetic turbulence responsible for pitch-angle scattering by requiring a strongly energy-dependent pitch-angle mean free path. The prominent soft X-ray excess ("Big Blue Bump") in the SED of the BL Lac object AO 0235+164 can be modelled as the signature of bulk Compton scattering of external radiation fields by the thermal electron population, which places additional constraints on the level of…
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