The ALMA carbon monoxide supernova (ACOS) survey II. Turbulent giant molecular clouds at the positions of core-collapse supernovae
M. Solar, M. J. Michałowski, J. Nadolny, J. Sollerman, E. Zapartas, A. Oliva, L. Galbany, J. Hjorth, B. Ayala, M. Koprowski, A. Leśniewska, P. Nowaczyk, O. Ryzhov, B. Šlaus
astro-ph.GA, astro-ph.HE
Submitted: 2026-08-09
Updated: 2026-08-12
Comments: Accepted for publication in A&A. Main text: 9 pages, 1 figure, and 2 tables. Appendix: 12 pages, 8 figures, and 6 tables
License: http://creativecommons.org/licenses/by/4.0/
The gist: Context.
Terminology
Abstract
Context. Study of cold molecular hydrogen gas (hereafter molecular gas) provides crucial insights into its interplay with star-forming regions. However, the connection between molecular gas turbulence and the sites of massive star (> 8) explosions as core-collapse supernovae (CCSNe) remains unexplored. Aims. We measure for the first time the turbulence of molecular gas in environments of CCSNe, with the aim to constrain the nature of their progenitors. Methods. In order to reach spatial resolutions of giant molecular cloud (GMC) sizes (about 100), we collected ALMA carbon monoxide J = 2 to 1 spectral line (about 230.54) observations (as a tracer of molecular gas) at the locations of 33 nearby CCSNe (< 100). Results. We found that CCSNe prefer molecular gas regions with high velocity dispersion compared to the average of their host galaxies. Conclusions. For CCSN progenitors, this observational evidence supports their increased formation in regions of high densities and/or their binary nature.
Sources
- Constraining the Molecular Gas Content of Fast Radio Burst (FRB) Host Galaxies
- HI and CO spectroscopy of the unusual host of GRB 171205A: A grand design spiral galaxy with a distorted HI field
- Examining Turbulence in Galactic Molecular Clouds. II. Turbulence Cascade Beyond the Scale of Giant Molecular Clouds
- A binary merger product as the direct progenitor of a Type II-P supernova
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