A Relationship Between Stellar Metallicity Gradients and Galaxy Age in Dwarf Galaxies
Abstract
We explore the origin of stellar metallicity gradients in simulated and observed dwarf galaxies. We use FIRE-2 cosmological baryonic zoom-in simulations of 26 isolated galaxies as well as existing observational data for 10 Local Group dwarf galaxies. Our simulated galaxies have stellar masses between and . Whilst gas-phase metallicty gradients are generally weak in our simulated galaxies, we find that stellar metallicity gradients are common, with central regions tending to be more metal-rich than the outer parts. The strength of the gradient is correlated with galaxy-wide median stellar age, such that galaxies with younger stellar populations have flatter gradients. Stellar metallicty gradients are set by two competing processes: (1) the steady "puffing" of old, metal-poor stars by feedback-driven potential fluctuations, and (2) the accretion of extended, metal-rich gas at late times, which fuels late-time metal-rich star formation. If recent star formation dominates, then extended, metal-rich star formation washes out pre-existing gradients from the "puffing" process. We use published results from ten Local Group dwarf galaxies to show that a similar relationship between age and stellar metallicity-gradient strength exists among real dwarfs. This suggests that observed stellar metallicity gradients may be driven largely by the baryon/feedback cycle rather than by external environmental effects.
Keywords
Cite
@article{arxiv.2009.01241,
title = {A Relationship Between Stellar Metallicity Gradients and Galaxy Age in Dwarf Galaxies},
author = {Francisco J. Mercado and James S. Bullock and Michael Boylan-Kolchin and Jorge Moreno and Andrew Wetzel and Kareem El-Badry and Andrew S. Graus and Alex Fitts and Philip F. Hopkins and Claude-André Faucher-Giguère},
journal= {arXiv preprint arXiv:2009.01241},
year = {2021}
}
Comments
14 pages, 13 figures, submitted to MNRAS