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Calibrating the relation of low-frequency radio continuum to star formation rate at 1 kpc scale with LOFAR

Authors :
E. Buie
Rosita Paladino
Marcus Brüggen
R.-J. Dettmar
Philip Best
Aritra Basu
George Heald
Evan Scannapieco
R. Beck
Elias Brinks
Błażej Nikiel-Wroczyński
Volker Heesen
D. A. Rafferty
L. A. Perez
C. J. Huff
Krzysztof T. Chyzy
Cathy Horellou
K. Sendlinger
J. G. Woolsey
Source :
Heesen, V, E., B II, Huff, C J, Perez, L A, Woolsey, J G, Rafferty, D A, Basu, A, Beck, R, Brinks, E, Horellou, C, Scannapieco, E, Brüggen, M, Dettmar, R-J, Sendlinger, K, Nikiel-Wroczyński, B, Chyży, K T, Best, P N, Heald, G H & Paladino, R 2019, ' Calibrating the relation of low-frequency radio continuum to star formation rate at 1 kpc scale with LOFAR ', Astronomy & Astrophysics . < https://www.aanda.org/component/solr/?task=results#!q=Calibrating%20the%20relation%20of%20low-frequency%20radio%20continuum%20to%20star%20formation%20rate%20at%201%20kpc%20scale%20with%20LOFAR&sort=relevance&rows=10 >
Publication Year :
2019

Abstract

Radio continuum (RC) emission in galaxies allows us to measure star formation rates (SFRs) unaffected by extinction due to dust, of which the low-frequency part is uncontaminated from thermal (free-free) emission. We calibrate the conversion from the spatially resolved 140 MHz RC emission to the SFR surface density ($\Sigma_{\rm SFR}$) at 1 kpc scale. We used recent observations of three galaxies (NGC 3184, 4736, and 5055) from the LOFAR Two-metre Sky Survey (LoTSS), and archival LOw-Frequency ARray (LOFAR) data of NGC 5194. Maps were created with the facet calibration technique and converted to radio $\Sigma_{\rm SFR}$ maps using the Condon relation. We compared these maps with hybrid $\Sigma_{\rm SFR}$ maps from a combination of GALEX far-ultraviolet and Spitzer 24 $\mu\rm m$ data using plots tracing the relation at $1.2\times 1.2$-kpc$^2$ resolution. The RC emission is smoothed with respect to the hybrid $\Sigma_{\rm SFR}$ owing to the transport of cosmic-ray electrons (CREs). This results in a sublinear relation $(\Sigma_{\rm SFR})_{\rm RC} \propto [(\Sigma_{\rm SFR})_{\rm hyb}]^{a}$, where $a=0.59\pm 0.13$ (140 MHz) and $a=0.75\pm 0.10$ (1365 MHz). Both relations have a scatter of $\sigma = 0.3~\rm dex$. If we restrict ourselves to areas of young CREs ($\alpha &gt; -0.65$; $I_\nu \propto \nu^\alpha$), the relation becomes almost linear at both frequencies with $a\approx 0.9$ and a reduced scatter of $\sigma = 0.2~\rm dex$. We then simulate the effect of CRE transport by convolving the hybrid $\Sigma_{\rm SFR}$ maps with a Gaussian kernel until the RC-SFR relation is linearised; CRE transport lengths are $l=1$-5 kpc. Solving the CRE diffusion equation, we find diffusion coefficients of $D=(0.13$-$1.5) \times 10^{28} \rm cm^2\,s^{-1}$ at 1 GeV. A RC-SFR relation at $1.4$ GHz can be exploited to measure SFRs at redshift $z \approx 10$ using $140$ MHz observations.&lt;br /&gt;Comment: 9 figures, 6 tables and 17 pages. This paper is part of the LOFAR surveys data release 1 and has been accepted for publication in a special edition of A&amp;A that will appear in Feb 2019, volume 622. The catalogues and images from the data release will be publicly available on lofar-surveys.org upon publication of the journal

Details

Language :
English
Database :
OpenAIRE
Journal :
Heesen, V, E., B II, Huff, C J, Perez, L A, Woolsey, J G, Rafferty, D A, Basu, A, Beck, R, Brinks, E, Horellou, C, Scannapieco, E, Br&#252;ggen, M, Dettmar, R-J, Sendlinger, K, Nikiel-Wroczyński, B, Chyży, K T, Best, P N, Heald, G H &amp; Paladino, R 2019, &#39; Calibrating the relation of low-frequency radio continuum to star formation rate at 1 kpc scale with LOFAR &#39;, Astronomy &amp; Astrophysics . < https://www.aanda.org/component/solr/?task=results#!q=Calibrating%20the%20relation%20of%20low-frequency%20radio%20continuum%20to%20star%20formation%20rate%20at%201%20kpc%20scale%20with%20LOFAR&amp;sort=relevance&amp;rows=10 >
Accession number :
edsair.doi.dedup.....eb40ed75ab463111bdcb4563963c0b42