Full Polarization Spectra of 3C 279
D. C. Homan (1), M. L. Lister (2), H. D. Aller (3), M. F. Aller (3),, J. F. C. Wardle (4) ((1) Denison University, (2) Purdue University, (3), University of Michigan, (4) Brandeis University)

TL;DR
This study uses multi-frequency VLBA observations and radiative transfer modeling to analyze the magnetic field and particle properties of the parsec-scale jet in 3C 279, revealing a poloidal magnetic field structure and jet composition details.
Contribution
It provides a comprehensive physical model of the polarization spectra of 3C 279's jet, integrating observations with radiative transfer simulations to constrain magnetic and particle properties.
Findings
Jet is dominated by a poloidal magnetic field along the axis.
The jet is kinetically dominated by protons with electrons as radiating particles.
A plausible lower cutoff in the relativistic particle energy spectrum is identified.
Abstract
We report the results of parsec-scale, multi-frequency VLBA observations of the core region of 3C 279 in Stokes I, linear polarization, and circular polarization. These full polarization spectra are modeled by radiative transfer simulations to constrain the magnetic field and particle properties of the parsec-scale jet in 3C 279. The polarization properties of the core region, including the amount of linear polarization, the amount and sign of Faraday rotation, and the amount and sign of circular polarization can be explained by a consistent physical picture. The base of the jet is modeled as an inhomogeneous Blandford-Konigl style conical jet dominated by a vector-ordered poloidal magnetic field along the jet axis, and we estimate its net magnetic flux. This poloidal field is responsible for the linear and circular polarization from this inhomogeneous component. Farther down the jet…
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