English

A comparison of $\text{H}_2$ formation models at high redshift

Astrophysics of Galaxies 2020-09-04 v2

Abstract

Modelling the molecular gas that is routinely detected through CO observations of high-redshift galaxies constitutes a major challenge for ab initio simulations of galaxy formation. We carry out a suite of cosmological hydrodynamic simulations to compare three approximate methods that have been used in the literature to track the formation and evolution of the simplest and most abundant molecule, H2_2. Namely, we consider: i) a semi-empirical procedure that associates H2_2 to dark-matter haloes based on a series of scaling relations inferred from observations, ii) a model that assumes chemical equilibrium between the H2_2 formation and destruction rates, and iii) a model that fully solves the out-of-equilibrium rate equations and accounts for the unresolved structure of molecular clouds. We study the impact of finite spatial resolution and show that robust H2_2 masses at redshift z4z\approx 4 can only be obtained for galaxies that are sufficiently metal enriched in which H2_2 formation is fast. This corresponds to H2_2 reservoirs with masses MH26×109MM_{\mathrm{H_2}}\gtrsim 6\times 10^9 \mathrm{M}_\odot. In this range, equilibrium and non-equilibrium models predict similar molecular masses (but different galaxy morphologies) while the semi-empirical method produces less H2_2. The star formation rates as well as the stellar and H2_2 masses of the simulated galaxies are in line with those observed in actual galaxies at similar redshifts that are not massive starbursts. The H2_2 mass functions extracted from the simulations at z4z\approx 4 agree well with recent observations that only sample the high-mass end. However, our results indicate that most molecular material at high zz lies yet undetected in reservoirs with 109<MH2<1010M10^9<M_{\mathrm H_2}<10^{10} \mathrm{M}_\odot.

Keywords

Cite

@article{arxiv.2003.04329,
  title  = {A comparison of $\text{H}_2$ formation models at high redshift},
  author = {Alexander Schäbe and Emilio Romano-Díaz and Cristiano Porciani and Aaron D. Ludlow and Matteo Tomassetti},
  journal= {arXiv preprint arXiv:2003.04329},
  year   = {2020}
}

Comments

19 pages, 12 figures, 1 table, accepted for publication in MNRAS, comments are welcome

R2 v1 2026-06-23T14:09:14.039Z