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Filamentary structures as the origin of blazar jet radio variability

  • Antonio Fuentes
  • , José L. Gómez
  • , José M. Martí
  • , Manel Perucho
  • , Guang Yao Zhao
  • , Rocco Lico
  • , Andrei P. Lobanov
  • , Gabriele Bruni
  • , Yuri Y. Kovalev
  • , Andrew Chael
  • , Kazunori Akiyama
  • , Katherine L. Bouman
  • , He Sun
  • , Ilje Cho
  • , Efthalia Traianou
  • , Teresa Toscano
  • , Rohan Dahale
  • , Marianna Foschi
  • , Leonid I. Gurvits
  • , Svetlana Jorstad
  • Jae-Young Kim, Alan P. Marscher, Yosuke Mizuno, Eduardo Ros, Tuomas Savolainen
  • CSIC - Institute of Astrophysics of Andalusia
  • University of Valencia
  • National Institute for Astrophysics
  • Max Planck Institute for Radio Astronomy
  • RAS - P.N. Lebedev Physics Institute
  • Princeton University
  • Massachusetts Institute of Technology
  • National Institutes of Natural Sciences - National Astronomical Observatory of Japan
  • Harvard University
  • California Institute of Technology
  • Indian Institute of Science Education and Research, Kolkata
  • Joint Institute for VLBI ERIC (JIVE)
  • Delft University of Technology
  • Boston University
  • St. Petersburg State University
  • Shanghai Jiao Tong University
  • Goethe University Frankfurt
  • Aalto University

Research output: Contribution to journalArticlepeer-review

45 Scopus citations

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 observations of blazars have revealed only funnel-like morphologies with little information on the internal structure of the ejected plasma or have lacked the dynamic range to reconstruct the extended jet emission. Here we present microarcsecond-scale angular resolution images of the blazar 3C 279 obtained at 22 GHz with the space very-long-baseline interferometry mission RadioAstron, which allowed us to resolve the jet transversely and reveal several filaments produced by plasma instabilities in a kinetically dominated flow. The polarimetric properties derived from our high-angular-resolution and broad-dynamic-range images are consistent with the presence of a helical magnetic field threaded to the jet. We infer a clockwise rotation as seen in the direction of flow motion with an intrinsic helix pitch angle of ~45° and a Lorentz factor of ~13 at the time of observation. We also propose a model to explain blazar jet radio variability in which emission features travelling down the jet may manifest as a result of differential Doppler boosting within the filaments, as opposed to the standard shock-in-jet model. Characterizing such variability is particularly important given the relevance of blazar physics from cosmic particle acceleration to standard candles in cosmology.

Original languageEnglish
Pages (from-to)1359-1367
Number of pages9
JournalNature Astronomy
Volume7
Issue number11
DOIs
StatePublished - Nov 2023

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