English

A titanic interstellar medium ejection from a massive starburst galaxy at redshift 1.4

Astrophysics of Galaxies 2021-01-12 v1

Abstract

Feedback-driven winds from star formation or active galactic nuclei might be a relevant channel for the abrupt quenching star formation in massive galaxies. However, both observations and simulations support the idea that these processes are non-conflictingly co-evolving and self-regulating. Furthermore, evidence of disruptive events that are capable of fast quenching is rare, and constraints on their statistical prevalence are lacking. Here we present a massive starburst galaxy at z=1.4 which is ejecting 46±1346 \pm 13\% of its molecular gas mass at a startling rate of 10,000\gtrsim 10,000 Myr1_{\odot}{\rm yr}^{-1}. A broad component that is red-shifted from the galaxy emission is detected in four (low- and high-J) CO and [CI] transitions and in the ionized phase, which ensures a robust estimate of the expelled gas mass. The implied statistics suggest that similar events are potentially a major star-formation quenching channel. However, our observations provide compelling evidence that this is not a feedback-driven wind, but rather material from a merger that has been probably tidally ejected. This finding challenges some literature studies in which the role of feedback-driven winds might be overstated.

Keywords

Cite

@article{arxiv.2101.04021,
  title  = {A titanic interstellar medium ejection from a massive starburst galaxy at redshift 1.4},
  author = {Annagrazia Puglisi and Emanuele Daddi and Marcella Brusa and Frederic Bournaud and Jeremy Fensch and Daizhong Liu and Ivan Delvecchio and Antonello Calabrò and Chiara Circosta and Francesco Valentino and Michele Perna and Shuowen Jin and Andrea Enia and Chiara Mancini and Giulia Rodighiero},
  journal= {arXiv preprint arXiv:2101.04021},
  year   = {2021}
}

Comments

Published in Nature Astronomy as an Article on 11 January 2021. The published version is available at https://www.nature.com/articles/s41550-020-01268-x (DOI 10.1038/s41550-020-01268-x)

R2 v1 2026-06-23T22:00:20.406Z