Prevalence of radio jets associated with galactic outflows and feedback from quasars

Author:

Jarvis M E123ORCID,Harrison C M2ORCID,Thomson A P4,Circosta C23,Mainieri V2,Alexander D M5,Edge A C5,Lansbury G B6ORCID,Molyneux S J2ORCID,Mullaney J R7

Affiliation:

1. Max-Planck Institut für Astrophysik, Karl-Schwarzschild-Str 1, D-85748 Garching, Germany

2. European Southern Observatory, Karl-Schwarzschild-Str 2, D-85748 Garching, Germany

3. Department of Physics, Ludwig Maximilian Universität, Professor-Huber-Platz 2, D-80539 Munich, Germany

4. Jodrell Bank Centre for Astrophysics, University of Manchester, Oxford Road, Manchester M13 9PL, UK

5. Department of Physics, Centre for Extragalactic Astronomy, Durham University, South Road, Durham DH1 3LE, UK

6. Institute of Astronomy, University of Cambridge, Madingley Road, Cambridge CB3 0HA, UK

7. Department of Physics and Astronomy, University of Sheffield, Hounsfield Road, Sheffield S3 7RH, UK

Abstract

Abstract We present 1–7 GHz high-resolution radio imaging (VLA and e-MERLIN) and spatially resolved ionized gas kinematics for 10 z < 0.2 type 2 ‘obscured’ quasars (log [LAGN/erg s−1] ≳ 45) with moderate radio luminosities ($\log [L_{\rm {1.4\,GHz}}$/W Hz−1]  = 23.3–24.4). These targets were selected to have known ionized outflows based on broad [O iii] emission-line components (full width at half-maximum ≈ 800–1800 km s−1). Although ‘radio-quiet’ and not ‘radio AGN’ by many traditional criteria, we show that for nine of the targets, star formation likely accounts for ≲10 per cent of the radio emission. We find that ∼80–90 per cent of these nine targets exhibit extended radio structures on 1–25 kpc scales. The quasars’ radio morphologies, spectral indices, and position on the radio size–luminosity relationship reveals that these sources are consistent with being low power compact radio galaxies. Therefore, we favour radio jets as dominating the radio emission in the majority of these quasars. The radio jets we observe are associated with morphologically and kinematically distinct features in the ionized gas, such as increased turbulence and outflowing bubbles, revealing jet–gas interaction on galactic scales. Importantly, such conclusions could not have been drawn from current low-resolution radio surveys such as FIRST. Our observations support a scenario where compact radio jets, with modest radio luminosities, are a crucial feedback mechanism for massive galaxies during a quasar phase.

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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