The HI reservoir in central spiral galaxies and the implied star formation process
Abstract
The cold interstellar medium (ISM) as the raw material for star formation is critical to understanding galaxy evolution. It is generally understood that galaxies stop making stars when, in one way or another, they run out of gas. However, here we provide evidence that central spiral galaxies remain rich in atomic gas even if their star formation rate and molecular gas fraction have dropped significantly compared to "normal" star-forming galaxies of the same mass. Since HI is sensitive to external processes, here we investigate central spiral galaxies using a combined sample from SDSS, ALFALFA, and xGASS surveys. After proper incompleteness corrections, we find that the key HI scaling relations for central spirals show significant but regular systematic dependence on stellar mass. At any given stellar mass, the HI gas mass fraction is about constant with changing specific star formation rate (sSFR), which suggests that HI reservoir is ubiquitous in central spirals with any star formation status down to M* ~ 10^9 Msun. Together with the tight correlation between the molecular gas mass fraction and sSFR for galaxies across a wide range of different properties, it suggests that the decline of SFR of all central spirals in the local universe is due to the halt of H2 supply, though there is plenty of HI gas around. These hence provide critical observations of the dramatically different behavior of the cold multi-phase ISM, and a key to understand the star formation process and quenching mechanism.
Keywords
Cite
@article{arxiv.2409.03168,
title = {The HI reservoir in central spiral galaxies and the implied star formation process},
author = {Jing Dou and Yingjie Peng and Qiusheng Gu and Alvio Renzini and Luis C. Ho and Filippo Mannucci and Emanuele Daddi and Chengpeng Zhang and Jiaxuan Li and Yong Shi and Tao Wang and Dingyi Zhao and Cheqiu Lyu and Di Li and Feng Yuan and Roberto Maiolino and Yulong Gao},
journal= {arXiv preprint arXiv:2409.03168},
year = {2024}
}
Comments
18 pages, 7 figures; Accepted for publication in the ApJL; This is the fourth paper in the "From Haloes to Galaxies" series