On the origin of the chemical bimodality of disk stars: A tale of merger and migration
arXiv:1909.09162 · doi:10.1093/mnras/stz3289
Abstract
The Milky Way's stellar disk exhibits a bimodality in the [Fe/H] vs. [/Fe] plane, showing a distinct high- and low- sequence whose origin is still under debate. We examine the [Fe/H]-[/Fe] abundance plane in cosmological hydrodynamical simulations of Milky Way like galaxies from the NIHAO-UHD project and show that the bimodal -sequence is a generic consequence of a gas-rich merger at some time in the Galaxy's evolution. The high- sequence evolves first in the early galaxies, extending to high metallicities, while it is the low- sequence that is formed after the gas-rich merger. The merger brings in fresh metal-poor gas diluting the interstellar medium's metallicity while keeping the [/Fe] abundance almost unchanged. The kinematic, structural and spatial properties of the bimodal -sequence in our simulations reproduces that of observations. In all simulations, the high- disk is old, radially concentrated towards the galaxy's center and shows large scale heights. In contrast, the low- disk is younger, more radially extended and concentrated to the disk mid-plane. Our results show that the abundance plane is well described by these two populations that have been distributed radially across the disk by migration: at present-day in the solar neighbourhood, low- stars originate from both the inner and outer disk while most of the high- stars have migrated from the inner disk. We show that age dating the stars in the [Fe/H]-[/Fe] plane can constrain the time of the low- sequence forming merger and conclude that -bimodality is likely a not uncommon feature of disk galaxies.
13 pages, 9 main text, 7 figures plus 3 in appendix, accepted by MNRAS
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