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Polarization and structure of relativistic parsec-scale AGN jets

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arxiv astro-ph/0406144 v1 pith:OJNT2MVF submitted 2004-06-06 astro-ph

Polarization and structure of relativistic parsec-scale AGN jets

classification astro-ph
keywords jetspolarizationrelativisticmagneticemittingfieldstoroidalcase
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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(Abridged) We consider the polarization properties of optically thin synchrotron radiation emitted by relativistically moving electron--positron jets carrying large-scale helical magnetic fields. In our model, the jet is cylindrical, and the emitting plasma moves parallel to the jet axis with a characteristic Lorentz factor $\Gamma$. We draw attention to the strong influence that the bulk relativistic motion of the emitting relativistic particles has on the observed polarization. We conclude that large-scale magnetic fields can explain the salient polarization properties of parsec-scale AGN jets. Since the typical degrees of polarization are $\leq 15%$, the emitting parts of the jets must have comparable rest-frame toroidal and poloidal fields. In this case, most relativistic jets are strongly dominated by the toroidal magnetic field component in the observer's frame, $B_\phi/B_z \sim \Gamma$. We also discuss the possibility that relativistic AGN jets may be electromagnetically (Poynting flux) dominated. In this case, dissipation of the toroidal magnetic field (and not fluid shocks) may be responsible for particle acceleration.

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Cited by 1 Pith paper

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  1. Peculiar Behavior of Optical Polarization in Blazar 1ES 1959+650: Role of Jet Magnetic Field and Geometry

    astro-ph.HE 2026-07 conditional novelty 5.0

    In 1ES 1959+650, optical polarization correlates positively with brightness before a flare, anti-correlates after it, and decouples during the flare — attributed to changing jet viewing geometry.