The far-infrared/radio correlation for a sample of strongly lensed dusty star-forming galaxies detected by Herschel

Author:

Giulietti M12ORCID,Massardi M341,Lapi A1356,Bonato M34,Enia A F M27ORCID,Negrello M8,D’Amato Q27,Behiri M1,De Zotti G9ORCID

Affiliation:

1. SISSA, Via Bonomea 265, I-34136 Trieste, Italy

2. INAF - Osservatorio di Astrofisica e Scienza dello Spazio, Via Gobetti 93/3, I-40129, Bologna, Italy

3. INAF/IRA, Istituto di Radioastronomia, Via Piero Gobetti 101, 40129 Bologna, Italy

4. INAF, Istituto di Radioastronomia - Italian ARC, Via Piero Gobetti 101, I-40129 Bologna, Italy

5. INFN - Sezione di Trieste, via Valerio 2, Trieste 34127, Italy

6. IFPU - Institute for fundamental physics of the Universe, Via Beirut 2, 34014 Trieste, Italy

7. 7University of Bologna - Department of Physics and Astronomy “Augusto Righi” (DIFA), Via Gobetti 93/2, I-40129, Bologna, Italy

8. School of Physics and Astronomy, Cardiff University, The Parade, Cardiff CF24 3AA, UK

9. INAF, Osservatorio Astronomico di Padova, Vicolo Osservatorio 5, I-35122 Padova, Italy

Abstract

Abstract We investigate the radio-far infrared (FIR) correlation for a sample of 28 bright high-redshift (1 ≲ z ≲ 4) star-forming galaxies selected in the FIR from the Herschel-ATLAS fields as candidates to be strongly gravitationally lensed. The radio information comes either from high sensitivity dedicated ATCA observations at 2.1 GHz or from cross-matches with the FIRST survey at 1.4 GHz. By taking advantage of source brightness possibly enhanced by lensing magnification, we identify a weak evolution with redshift out to z ≲ 4 of the FIR-to-radio luminosity ratio qFIR. We also find that the qFIR parameter as a function of the radio power $L_{1.4\, \rm GHz}$ displays a clear decreasing trend, similarly to what is observed for optically/radio selected lensed quasars found in literature, yet covering a complementary region in the $q_{\rm FIR}-L_{1.4\, \rm GHz}$ diagram. We interpret such a behavior in the framework of an in-situ galaxy formation scenario, as a result of the transition from an early dust-obscured star-forming phase (mainly pinpointed by our FIR selection) to a late radio-loud quasar phase (preferentially sampled by the optical/radio selection).

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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