The SAMI Galaxy Survey: the drivers of gas and stellar metallicity differences in galaxies

Author:

Fraser-McKelvie A12ORCID,Cortese L12ORCID,Groves B12ORCID,Brough S23ORCID,Bryant J245,Catinella B12ORCID,Croom S24ORCID,D’Eugenio F67ORCID,López-Sánchez Á R289,van de Sande J24ORCID,Sweet S210,Vaughan S4ORCID,Bland-Hawthorn J4,Lawrence J8,Lorente N11,Owers M2912ORCID

Affiliation:

1. International Centre for Radio Astronomy Research, The University of Western Australia, 35 Stirling Hwy, 6009 Crawley, WA, Australia

2. ARC Centre of Excellence for All Sky Astrophysics in 3 Dimensions (ASTRO 3D)

3. School of Physics, University of New South Wales, NSW 2052, Australia

4. Sydney Institute for Astronomy (SIfA), School of Physics, The University of Sydney, NSW 2006, Australia

5. Australian Astronomical Optics, AAO-USydney, School of Physics, University of Sydney, NSW 2006, Australia

6. Cavendish Laboratory and Kavli Institute for Cosmology, University of Cambridge, Madingley Rise, Cambridge, CB3 0HA, United Kingdom

7. Sterrenkundig Observatorium, Universiteit Gent, Krijgslaan 281 S9, B-9000 Gent, Belgium

8. Australian Astronomical Optics, Macquarie University, 105 Delhi Rd, North Ryde, NSW 2113, Australia

9. Department of Physics and Astronomy, Macquarie University, NSW 2109, Australia

10. School of Mathematics and Physics, University of Queensland, Brisbane, QLD 4072, Australia

11. AAO-MQ, Faculty of Science & Engineering, Macquarie University. 105 Delhi Rd, North Ryde, NSW 2113, Australia

12. Astronomy, Astrophysics and Astrophotonics Research Centre, Macquarie University, Sydney, NSW 2109, Australia

Abstract

ABSTRACT The combination of gas-phase oxygen abundances and stellar metallicities can provide us with unique insights into the metal enrichment histories of galaxies. In this work, we compare the stellar and gas-phase metallicities measured within a 1Re aperture for a representative sample of 472 star-forming galaxies extracted from the SAMI Galaxy Survey. We confirm that the stellar and interstellar medium (ISM) metallicities are strongly correlated, with scatter ∼3 times smaller than that found in previous works, and that integrated stellar populations are generally more metal-poor than the ISM, especially in low-mass galaxies. The ratio between the two metallicities strongly correlates with several integrated galaxy properties including stellar mass, specific star formation rate, and a gravitational potential proxy. However, we show that these trends are primarily a consequence of: (a) the different star formation and metal enrichment histories of the galaxies, and (b) the fact that while stellar metallicities trace primarily iron enrichment, gas-phase metallicity indicators are calibrated to the enrichment of oxygen in the ISM. Indeed, once both metallicities are converted to the same ‘element base’ all of our trends become significantly weaker. Interestingly, the ratio of gas to stellar metallicity is always below the value expected for a simple closed-box model, which requires that outflows and inflows play an important role in the enrichment history across our entire stellar mass range. This work highlights the complex interplay between stellar and gas-phase metallicities and shows how care must be taken in comparing them to constrain models of galaxy formation and evolution.

Funder

University of Sydney

ASTRO

Australian Research Council

ERC

Science and Technology Facilities Council

ARC

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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