The cycle of metals in the infalling elliptical galaxy NGC 1404

Author:

Mernier F12ORCID,Werner N3ORCID,Su Y4ORCID,Pinto C5ORCID,Grossová R36ORCID,Simionescu A278ORCID,Iodice E9ORCID,Sarzi M10,Görgei A11

Affiliation:

1. European Space Agency (ESA), European Space Research and Technology Centre (ESTEC), Keplerlaan 1, NL-2201 AZ Noordwijk, the Netherlands

2. SRON Netherlands Institute for Space Research, Niels Bohrweg 4, NL-2333 CA Leiden, the Netherlands

3. Department of Theoretical Physics and Astrophysics, Faculty of Science, Masaryk University, Kotlářská 2, Brno CZ-611 37, Czech Republic

4. Department of Physics and Astronomy, University of Kentucky, 505 Rose Street, Lexington, KY 40506, USA

5. INAF - IASF Palermo, Via U. La Malfa 153, I-90146 Palermo, Italy

6. Dipartimento di Fisica, Universita degli Studi di Torino, via Pietro Giuria 1, I-10125 Torino, Italy

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

8. Kavli Institute for the Physics and Mathematics of the Universe (WPI), University of Tokyo, Kashiwa 277-8583, Japan

9. INAF - Astronomical Observatory of Capodimonte, via Moiariello 16, I-80131 Napoli, Italy

10. Armagh Observatory and Planetarium, College Hill, Armagh BT61 DG, UK

11. Institute of Physics, Eötvös University, Pázmány Péter sétány 1/A, Budapest 1117, Hungary

Abstract

ABSTRACT Hot atmospheres pervading galaxy clusters, groups, and early-type galaxies are rich in metals, produced during epochs and diffused via processes that are still to be determined. While this enrichment has been routinely investigated in clusters, metals in lower mass systems are more challenging to probe with standard X-ray exposures and spectroscopy. In this paper, we focus on very deep XMM–Newton (∼350 ks) observations of NGC 1404, a massive elliptical galaxy experiencing ram-pressure stripping of its hot atmosphere while infalling towards the centre of the Fornax cluster, with the aim to derive abundances through its hot gas extent. Importantly, we report the existence of a new fitting bias – the ‘double Fe bias’ – leading to an underestimate of the Fe abundance when two thermal components cannot realistically model the complex temperature structure present in the outer atmosphere of the galaxy. Contrasting with the ‘metal conundrum’ seen in clusters, the Fe and Mg masses of NGC 1404 are measured 1–2 orders of magnitude below what stars and supernovae could have reasonably produced and released. In addition, we note the remarkable Solar abundance ratios of the galaxy’s halo, different from its stellar counterpart but similar to the chemical composition of the ICM of rich clusters. Completing the clusters regime, all these findings provide additional support towards a scenario of early enrichment, at play over two orders of magnitude in mass. A few peculiar and intriguing features, such as a possible double metal peak as well as an apparent ring of enhanced Si near the galaxy core, are also discussed.

Funder

GACR

Netherlands Organisation for Scientific Research

ESA

NASA

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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