paper

Thermal Phases of the Neutral Atomic Interstellar Medium -- from Solar Metallicity to Primordial Gas

arXiv:1902.06764 · doi:10.3847/1538-4357/ab2fd1

Abstract

We study the thermal structure of the neutral atomic (H {\small I}) interstellar medium across a wide range of metallicities, from supersolar down to vanishing metallicity, and for varying UV intensities and cosmic-ray ionization rates. We calculate self-consistently the gas temperature and species abundances (with a special focus on the residual H), assuming thermal and chemical steady-state. For solar metallicity, , we recover the known result that there exists a pressure range over which the gas is multiphased, with the warm ( K, WNM) and cold ( K, CNM) phases coexisting at the same pressure. At a metallicity , the CNM is colder (compared to ) due to the reduced efficiency of photoelectric heating. For , cosmic-ray ionization becomes the dominant heating mechanism and the WNM-to-CNM transition shifts to ever increasing pressure/density as the metallicity is reduced. For metallicities , H cooling becomes important, lowering the temperature of the WNM (down to K), and smoothing out the multiphase phenomenon. At vanishing metallicities, H heating becomes effective and the multiphase phenomenon disappears entirely. We derive analytic expressions for the critical densities for the warm-to-cold phase transition in the different regimes, and the critical metallicities for H cooling and heating. We discuss potential implications on the star-formation rates of galaxies and self-regulation theories.

Accepted for publication in ApJ