English

Filamentary structures as the origin of blazar jet radio variability

High Energy Astrophysical Phenomena 2023-12-07 v1 Astrophysics of Galaxies

Abstract

Supermassive black holes at the centre of active galactic nuclei power some of the most luminous objects in the Universe. Typically, very long baseline interferometric (VLBI) observations of blazars have revealed only funnel-like morphologies with little information of the ejected plasma internal structure, or lacked the sufficient dynamic range to reconstruct the extended jet emission. Here we show microarcsecond-scale angular resolution images of the blazar 3C 279 obtained at 22 GHz with the space VLBI mission RadioAstron, which allowed us to resolve the jet transversely and reveal several filaments produced by plasma instabilities in a kinetically dominated flow. Our high angular resolution and dynamic range image suggests that emission features traveling down the jet may manifest as a result of differential Doppler-boosting within the filaments, as opposed to the standard shock-in-jet model invoked to explain blazar jet radio variability. Moreover, we infer that the filaments in 3C 279 are possibly threaded by a helical magnetic field rotating clockwise, as seen in the direction of the flow motion, with an intrinsic helix pitch angle of ~45 degrees in a jet with a Lorentz factor of ~13 at the time of observation.

Keywords

Cite

@article{arxiv.2311.01861,
  title  = {Filamentary structures as the origin of blazar jet radio variability},
  author = {Antonio Fuentes and José L. Gómez and José M. Martí and Manel Perucho and Guang-Yao Zhao and Rocco Lico and Andrei P. Lobanov and Gabriele Bruni and Yuri Y. Kovalev and Andrew Chael and Kazunori Akiyama and Katherine L. Bouman and He Sun and Ilje Cho and Efthalia Traianou and Teresa Toscano and Rohan Dahale and Marianna Foschi and Leonid I. Gurvits and Svetlana Jorstad and Jae-Young Kim and Alan P. Marscher and Yosuke Mizuno and Eduardo Ros and Tuomas Savolainen},
  journal= {arXiv preprint arXiv:2311.01861},
  year   = {2023}
}

Comments

15 pages, 7 figures. Initial version of an article published in Nature Astronomy