The optically selected 1.4-GHz quasar luminosity function below 1 mJy

Author:

Malefahlo Eliab1ORCID,Santos Mario G123,Jarvis Matt J14ORCID,White Sarah V25ORCID,Zwart Jonathan T L167ORCID

Affiliation:

1. Department of Physics & Astronomy, University of the Western Cape, Private Bag X17, Bellville, Cape Town 7535, South Africa

2. South African Radio Astronomy Observatory (SARAO), 2 Fir Street, Observatory, Cape Town 7925, South Africa

3. Instituto de Astrofisica e Ciencias do Espaco, Universidade de Lisboa, Observatório Astronómico de Lisboa, Tapada da Ajuda, PT1349-018 Lisboa, Portugal

4. Department of Physics, University of Oxford, Keble Road, Oxford OX1 3RH, UK

5. Department of Physics and Electronics, Rhodes University, PO Box 94, Grahamstown 6140, South Africa

6. Department of Astronomy, University of Cape Town, Private Bag X3, Rondebosch, Cape Town 7701, South Africa

7. SprintHive (Pty) Ltd, Brickfield Canvas, 35 Brickfield Road, Salt River, Cape Town 7925, South Africa

Abstract

ABSTRACT We present the radio luminosity function (RLF) of optically selected quasars below 1 mJy, constructed by applying a Bayesian-fitting stacking technique to objects well below the nominal radio flux density limit. We test the technique using simulated data, confirming that we can reconstruct the RLF over three orders of magnitude below the typical 5σ detection threshold. We apply our method to 1.4-GHz flux densities from the Faint Images of the Radio Sky at Twenty-Centimeters (FIRST) survey, extracted at the positions of optical quasars from the Sloan Digital Sky Survey over seven redshift bins up to z = 2.15, and measure the RLF down to two orders of magnitude below the FIRST detection threshold. In the lowest redshift bin (0.2 < z < 0.45), we find that our measured RLF agrees well with deeper data from the literature. The RLF for the radio-loud quasars flattens below $\log _{10}[L_{1.4}/{\rm W\, Hz}^{-1}] \approx 25.5$ and becomes steeper again below $\log _{10}[L_{1.4}/{\rm W\, Hz}^{-1}] \approx 24.8$, where radio-quiet quasars start to emerge. The radio luminosity where radio-quiet quasars emerge coincides with the luminosity where star-forming galaxies are expected to start dominating the radio source counts. This implies that there could be a significant contribution from star formation in the host galaxies, but additional data are required to investigate this further. The higher redshift bins show a similar behaviour to the lowest z bin, implying that the same physical process may be responsible.

Funder

National Research Foundation

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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