Polarization of synchrotron radiation from blazar jets
Filippo Bolis, Emanuele Sobacchi, Fabrizio Tavecchio

TL;DR
This paper proposes an alternative explanation for the observed polarization properties of blazar jets, emphasizing the role of magnetic field topology over particle acceleration mechanisms, based on modeling synchrotron radiation in axisymmetric jets.
Contribution
It demonstrates that jet magnetic field topology can naturally account for observed polarization chromaticity and EVPA invariance, challenging shock acceleration interpretations.
Findings
Polarization degree increases with photon frequency in axisymmetric jets.
EVPA remains nearly constant across frequencies in the model.
Magnetic field topology significantly influences polarization properties.
Abstract
Supermassive black holes in active galactic nuclei (AGNs) launch relativistic jets that shine through the entire electromagnetic spectrum. Blazars are a subclass of AGN where non-thermal radiation from the jet is strongly beamed, as the jet is directed nearly toward the observer. Multifrequency polarimetry is emerging as a powerful probe of blazar jets, especially with the advent of the Imaging X-ray Polarimetry Explorer (IXPE) space observatory. IXPE mostly targeted high synchrotron peaked (HSP) blazars, where both optical and X-ray emission can be attributed to synchrotron radiation from a population of non-thermal electrons. Observations of HSP blazars show that the polarization degree is strongly chromatic (), whereas the electric vector position angle (EVPA) is nearly independent of the observed frequency (). The…
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Taxonomy
TopicsAstrophysics and Cosmic Phenomena · Gyrotron and Vacuum Electronics Research · Particle Accelerators and Free-Electron Lasers
