MIGHTEE polarization early science fields: the deep polarized sky

Author:

Taylor A R123ORCID,Sekhar S1234ORCID,Heino L12,Scaife A M M56ORCID,Stil J7,Bowles M5,Jarvis M8ORCID,Heywood I8910,Collier J D1211

Affiliation:

1. Inter-University Institute for Data Intensive Astronomy , Univrsity of Cape Town, Rondebosch, 7701 , South Africa

2. Department of Astronomy, University of Cape Town , Rondebosch, Cape Town, 7701 , South Africa

3. Department of Physics and Astronomy, University of the Western Cape , Bellville, Cape Town , 7535 South Africa

4. National Radio Astronomy Observatory , Socorro, NM, 878010-0387 , USA

5. Department of Physics and Astronomy, University of Manchester , Manchester, M13 9PL , UK

6. The Alan Turing Institute , Euston Road, London NW1 2DB , UK

7. Department of Physics and Astronomy, University of Calgary , Calgary, T2N 1N4 , Canada

8. Department of Astrophysics, University of Oxford , Oxford, 0X1 3PU , UK

9. Centre for Radio Astronomy Techniques and Technologies, Department of Physics and Electronics, Rhodes University , Makhanda, 6139 , South Africa

10. South African Radio Astronomy Observatory , Observatory, 7925, Cape Town , South Africa

11. School of Science, Western Sydney University , Locked Bag 1797, Penrith, NSW 2751 , Australia

Abstract

ABSTRACT The MeerKAT International GigaHertz Tiered Extragalactic Exploration (MIGHTEE) is one of the MeerKAT large survey projects, designed to pathfind SKA key science. MIGHTEE is undertaking deep radio imaging of four well-observed fields (COSMOS, XMM-LSS, ELAIS S1, and CDFS) totaling 20 square degrees to μJy sensitivities. Broad-band imaging observations between 880 and1690 MHz yield total intensity continuum, spectro-polarimetry, and atomic hydrogen spectral imaging. Early science data from MIGHTEE are being released from initial observations of COSMOS and XMM–LSS. This paper describes the spectro-polarimetric observations, the polarization data processing of the MIGHTEE early science fields, and presents polarization data images and catalogues. The catalogues include radio spectral index, redshift information, and Faraday rotation measure synthesis results for 13 267 total intensity radio sources down to a polarized intensity detection limit of ∼20 μJy bm−1. Polarized signals were detected from 324 sources. For the polarized detections, we include a catalogue of Faraday Depth from both Faraday Synthesis and Q, U fitting, as well as total intensity and polarization spectral indices. The distribution of redshift of the total radio sources and detected polarized sources are the same, with median redshifts of 0.86 and 0.82, respectively. Depolarization of the emission at longer-wavelengths is seen to increase with decreasing total-intensity spectral index, implying that depolarization is intrinsic to the radio sources. No evidence is seen for a redshift dependence of the variance of Faraday depth.

Funder

National Research Foundation

Department of Science and Innovation, South Africa

Publisher

Oxford University Press (OUP)

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