Constraining the intergalactic medium at z ≈ 9.1 using LOFAR Epoch of Reionization observations

Author:

Ghara R123ORCID,Giri S K14ORCID,Mellema G1ORCID,Ciardi B5,Zaroubi S236,Iliev I T7ORCID,Koopmans L V E6,Chapman E8ORCID,Gazagnes S6,Gehlot B K69ORCID,Ghosh A101112ORCID,Jelić V13ORCID,Mertens F G614ORCID,Mondal R7ORCID,Schaye J15ORCID,Silva M B16,Asad K M B17ORCID,Kooistra R618,Mevius M19,Offringa A R619,Pandey V N619,Yatawatta S19ORCID

Affiliation:

1. The Oskar Klein Centre, Department of Astronomy, Stockholm University, AlbaNova, SE-10691 Stockholm, Sweden

2. Department of Natural Sciences, The Open University of Israel, 1 University Road, PO Box 808, Ra’anana 4353701, Israel

3. Department of Physics, Technion, Haifa 32000, Israel

4. Institute for Computational Science, University of Zurich, Winterthurerstrasse 190, CH-8057 Zurich, Switzerland

5. Max-Planck Institute for Astrophysics, Karl-Schwarzschild-Straße 1, D-85748 Garching, Germany

6. Kapteyn Astronomical Institute, University of Groningen, PO Box 800, NL-9700AV Groningen, the Netherlands

7. Astronomy Centre, Department of Physics and Astronomy, Pevensey II Building, University of Sussex, Brighton BN1 9QH, UK

8. Astrophysics Group, Imperial College London, Blackett Laboratory, Prince Consort Road, London SW7 2AZ, UK

9. School of Earth and Space Exploration, Arizona State University, Tempe, AZ, USA

10. Department of Physics, University of the Western Cape, Cape Town 7535, South Africa

11. SARAO, 2 Fir Street, Black River Park, Observatory, Capetown, South Africa

12. Department of Physics, Banwarilal Bhalotia College, Asansol, West Bengal, India

13. Ruđer Bošković Institute, Bijenička cesta 54, 10000 Zagreb, Croatia

14. LERMA, Observatoire de Paris, PSL Research University, CNRS, Sorbonne Université, F-75014 Paris, France

15. Leiden Observatory, Leiden University, PO Box 9513, NL-2300RA Leiden, the Netherlands

16. Institute of Theoretical Astrophysics, University of Oslo, PO Box 1029 Blindern, N-0315 Oslo, Norway

17. Independent University Bangladesh, Plot 16, Block B, Aftabuddin Ahmed Road, Bashundhara R/A, Dhaka, Bangladesh

18. Kavli IPMU (WPI), UTIAS, The University of Tokyo, Kashiwa, Chiba 277-8583, Japan

19. ASTRON, PO Box 2, NL-7990 AA Dwingeloo, the Netherlands

Abstract

ABSTRACT We derive constraints on the thermal and ionization states of the intergalactic medium (IGM) at redshift ≈ 9.1 using new upper limits on the 21-cm power spectrum measured by the LOFAR radio telescope and a prior on the ionized fraction at that redshift estimated from recent cosmic microwave background (CMB) observations. We have used results from the reionization simulation code grizzly and a Bayesian inference framework to constrain the parameters which describe the physical state of the IGM. We find that, if the gas heating remains negligible, an IGM with ionized fraction ≳0.13 and a distribution of the ionized regions with a characteristic size ≳ 8 h−1 comoving megaparsec (Mpc) and a full width at half-maximum (FWHM) ≳16 h−1 Mpc is ruled out. For an IGM with a uniform spin temperature TS ≳ 3 K, no constraints on the ionized component can be computed. If the large-scale fluctuations of the signal are driven by spin temperature fluctuations, an IGM with a volume fraction ≲0.34 of heated regions with a temperature larger than CMB, average gas temperature 7–160 K, and a distribution of the heated regions with characteristic size 3.5–70 h−1 Mpc and FWHM of ≲110 h−1 Mpc is ruled out. These constraints are within the 95 per cent credible intervals. With more stringent future upper limits from LOFAR at multiple redshifts, the constraints will become tighter and will exclude an increasingly large region of the parameter space.

Funder

PRACE

Swedish Research Council

Israel Science Foundation

Croatian Science Foundation

OCW

Royal Society

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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