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Chemical evolution of local post-starburst galaxies: Implications for the mass-metallicity relation

Authors :
Leung, Ho-Hin
Wild, Vivienne
Papathomas, Michail
Carnall, Adam
Zheng, Yirui
Boardman, Nicholas
Wang, Cara
Johansson, Peter H.
Source :
MNRAS, Volume 528, Issue 3, March 2024, Pages 4029-4052
Publication Year :
2023

Abstract

We use the stellar fossil record to constrain the stellar metallicity evolution and star-formation histories of the post-starburst (PSB) regions within 45 local post-starburst galaxies from the MaNGA survey. The direct measurement of the regions' stellar metallicity evolution is achieved by a new two-step metallicity model that allows for stellar metallicity to change at the peak of the starburst. We also employ a Gaussian process noise model that accounts for correlated errors introduced by the observational data reduction or inaccuracies in the models. We find that a majority of PSB regions (69% at $>1\sigma$ significance) increased in stellar metallicity during the recent starburst, with an average increase of 0.8 dex and a standard deviation of 0.4 dex. A much smaller fraction of PSBs are found to have remained constant (22%) or declined in metallicity (9%, average decrease 0.4 dex, standard deviation 0.3 dex). The pre-burst metallicities of the PSB galaxies are in good agreement with the mass-metallicity relation of local star-forming galaxies. These results are consistent with hydrodynamic simulations, which suggest that mergers between gas-rich galaxies are the primary formation mechanism of local PSBs, and rapid metal recycling during the starburst outweighs the impact of dilution by any gas inflows. The final mass-weighted metallicities of the PSB galaxies are consistent with the mass-metallicity relation of local passive galaxies. Our results suggest that rapid quenching following a merger-driven starburst is entirely consistent with the observed gap between the stellar mass-metallicity relations of local star-forming and passive galaxies.<br />Comment: 19+5 pages, 8+4 figures, Published in MNRAS

Details

Database :
arXiv
Journal :
MNRAS, Volume 528, Issue 3, March 2024, Pages 4029-4052
Publication Type :
Report
Accession number :
edsarx.2309.16626
Document Type :
Working Paper
Full Text :
https://doi.org/10.1093/mnras/stae225