Obscured flat spectrum radio active galactic nuclei as sources of high-energy neutrinos

  • G. Maggi
  • , S. Buitink
  • , P. Correa
  • , K. D. de Vries
  • , G. Gentile
  • , J. León Tavares
  • , O. Scholten
  • , N. van Eijndhoven
  • , M. Vereecken
  • , T. Winchen

    Research output: Contribution to journalArticleAcademicpeer-review

    11 Citations (Scopus)
    62 Downloads (Pure)

    Abstract

    Active galactic nuclei (AGN) are believed to be one of the main source candidates for the high-energy (TeV-PeV) cosmic neutrino flux recently discovered by the IceCube neutrino observatory. Nevertheless, several correlation studies between AGN and the cosmic neutrinos detected by IceCube show no significance. Therefore, in this article we consider a specific subclass of AGN for which an increased neutrino production is expected. This subclass contains AGN for which their high-energy jet is pointing toward Earth. Furthermore, we impose the condition that the jet is obscured by gas or dust surrounding the AGN. A method is presented to determine the total column density of the obscuring medium, which is probed by determining the relative x-ray attenuation with respect to the radio flux as obtained from the AGN spectrum. The total column density allows us to probe the interaction of the jet with the surrounding matter, which leads to additional neutrino production. Finally, starting from two different source catalogs, this method is applied to specify a sample of low redshift radio galaxies for which an increased neutrino production is expected.
    Original languageEnglish
    Article number103007
    Number of pages14
    JournalPhysical Review D
    Volume94
    Issue number10
    DOIs
    Publication statusPublished - 16-Nov-2016

    Keywords

    • GAMMA-RAY BURSTS
    • COSMIC-RAYS
    • TELESCOPE ARRAY
    • SPACE-TELESCOPE
    • MODEL
    • GALAXIES
    • CATALOG
    • JETS
    • SKY

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