Cloud Scale Star Formation and Gas Scaling Relations in the Milky Way

arXiv:2608.02750 · astro-ph.GA, astro-ph.SR · Submitted 2026-08-03 · Read on arXiv

Alphesunny Sarkar, Tapas Baug, Ariful Hoque, Suchetana Chatterjee, Chayan Mondal

astro-ph.GA, astro-ph.SR

Submitted: 2026-08-03

Comments: 15 pages, 10 figures, Accepted for publication in ApJ

License: http://creativecommons.org/licenses/by/4.0/

The gist: We investigate cloud-scale star formation in the Milky Way using a sample of 45 molecular clouds (sizes of 5-240 pc) in the inner Galactic plane, spanning heliocentric distances of 1.1-14.4 kpc.

Terminology

Abstract

We investigate cloud-scale star formation in the Milky Way using a sample of 45 molecular clouds (sizes of 5-240 pc) in the inner Galactic plane, spanning heliocentric distances of 1.1-14.4 kpc. Masses of these clouds are derived from 12 CO and 13 CO emission, while stellar masses are estimated using the young stellar object (YSO) population. The studied molecular clouds have masses ranging from about10 cubed to 2.3 times10 6 M, with star formation efficiencies (SFE) up to 0.33. We find a tight, nearly linear scaling of the star formation rate (SFR) with the cloud mass, indicating that more massive clouds form proportionally more stars. The SFE, however, shows a declining trend with cloud mass. The relation between the star formation rate surface density (SFR) and gas surface density (gas) exhibits substantial cloud-to-cloud scatter, indicating that the canonical Kennicutt--Schmidt law is not strongly recovered at the scale of individual molecular clouds. Incorporating the cloud free-fall time (t ff) into the star formation scaling relation highlights its important role in regulating star formation, although the observed relations suggest that the star formation efficiency per free-fall time is not universal. In particular, the SFE decreases with increasing gas mass available per free-fall time. We discuss the implications of our results in the context of recent theoretical models of molecular cloud evolution and star formation.

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