English

The mass-metallicity relation as a ruler for galaxy evolution: insights from the James Webb Space Telescope

Astrophysics of Galaxies 2025-06-25 v2 Cosmology and Nongalactic Astrophysics

Abstract

Galaxy evolution emerges from the balance between cosmic gas accretion, fueling star formation, and supernova (SN) feedback, regulating the metal enrichment. Hence, the stellar mass (MM_*) - gas metallicity relation (MZR) is key to understanding the physics of galaxies. High-quality JWST data enable accurate measurements of the MZR up to redshift z=10. Our aims are to understand the observed MZR, its connection with the star formation rate (SFR), the role played by SFR stochasticity, and how it is regulated by SN feedback. We compare the MZR from the JADES, CEERS, and UNCOVER surveys, which comprise about 180 galaxies at z=310z=3-10 with 106<M/M<101010^6<M_*/M_\odot<10^{10}, with 200 galaxies from the SERRA cosmological simulations. To interpret the MZR, we develop a minimal model for galaxy evolution that includes: cosmic accretion modulated with an amplitude A100A_{100} on 100 Myr; a time delay tdt_d between SFR and SN; SN-driven outflows with a varying mass loading factor ϵSN\epsilon_{SN}. Using our minimal model, we find the observed mean MZR is reproduced by weak outflows (ϵSN=1/4\epsilon_{SN}=1/4), in line with findings from JADES. Matching the observed MZR dispersion requires td=20t_d=20 Myr and a A100=1/3A_{100}=1/3 modulation of the accretion rate. Successful models have low stochasticity (σSFR=0.2\sigma_{SFR}=0.2), yielding a MZR dispersion of σZ=0.2\sigma_{Z}=0.2. Such values are close but lower than SERRA predictions (σSFR=0.24\sigma_{SFR}=0.24, σZ=0.3\sigma_{Z}=0.3), clarifying why SERRA shows flatter trend and some tension with the observations. As the MZR is very sensitive to SFR stochasticity, models predicting high r.m.s. values (σSFR=0.5\sigma_{SFR}=0.5) result in a ``chemical chaos'' (i.e. σZ=1.4\sigma_{Z}=1.4), virtually destroying the MZR. As a consequence, invoking a highly stochastic SFR (σSFR=0.8\sigma_{SFR}=0.8) to explain the overabundance of bright, super-early galaxies leads to inconsistencies with the observed MZR.

Keywords

Cite

@article{arxiv.2408.00061,
  title  = {The mass-metallicity relation as a ruler for galaxy evolution: insights from the James Webb Space Telescope},
  author = {A. Pallottini and A. Ferrara and S. Gallerani and L. Sommovigo and S. Carniani and L. Vallini and M. Kohandel and G. Venturi},
  journal= {arXiv preprint arXiv:2408.00061},
  year   = {2025}
}

Comments

12 pages and 6 figures for the main text, 2 pages and 2 figures for the appendix, accepted by A&A