A LOFAR-IRAS cross-match study: the far-infrared radio correlation and the 150-MHz luminosity as a star-formation rate
L. Wang, F. Gao, K. J. Duncan, W.L. Williams, M. Rowan-Robinson, J., Sabater, T. W. Shimwell, M. Bonato, G. Calistro-Rivera, K. T. Chyzy, D., Farrah, G. Gurkan, M.J.Hardcastle, I. McCheyne, I. Prandoni, S. C. Read,, H.J.A. Rottgering, D.J.B. Smith

TL;DR
This study demonstrates a strong linear correlation between 150-MHz radio luminosity and infrared-based star-formation rates in local galaxies, establishing L150 as a dust-unaffected SFR tracer.
Contribution
It provides the first detailed calibration of 150-MHz luminosity as a reliable star-formation rate indicator in the local universe.
Findings
Strong linear correlation between L150 and LIR with a slope of 1.37.
Tight correlation between L150 and SFR derived from multiple tracers.
Median qIR value of 2.14 with an rms scatter of 0.34.
Abstract
Aims. We aim to study the far-infrared radio correlation (FIRC) at 150 MHz in the local Universe (at a median redshift z~0:05) and improve the use of the rest-frame 150-MHz luminosity, L150, as a star-formation rate (SFR) tracer, which is unaffected by dust extinction. Methods. We cross-match the 60-um selected Revised IRAS Faint Source Survey Redshift (RIFSCz) catalogue and the 150-MHz selected LOFAR value-added source catalogue in the Hobby-Eberly Telescope Dark Energy Experiment (HETDEX) Spring Field. We estimate L150 for the cross-matched sources and compare it with the total infrared (IR) luminosity, LIR, and various SFR tracers. Results. We find a tight linear correlation between log L150 and log LIR for star-forming galaxies, with a slope of 1.37. The median qIR value (defined as the logarithm of the LIR to L150 ratio) and its rms scatter of our main sample are 2.14 and 0.34,…
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