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The efficient star-forming regions of stripped-envelope supernovae

Published 19 Aug 2026 in astro-ph.GA and astro-ph.HE | (2608.18897v1)

Abstract: Massive stars ($&gt; 8~\rm{M}<em>{\odot}$) play a key role in shaping the interstellar medium of galaxies through stellar feedback. However, how these stars form and evolve before exploding as core-collapse supernovae (SNe) remains elusive. We compute for the first time the star-formation efficiencies (SFEs) at the locations of hydrogen-rich (H-rich) SNe and stripped-envelope SNe (SESNe) to constrain their progenitor properties. We used VLT/MUSE and ALMA observations of Hαα/Hββ and CO(2-1) emission lines to trace the components of the warm ionised gas and cold molecular gas, respectively. Both observations resolve individual H II regions and giant molecular clouds at spatial resolutions on cloud-scales (\sim100 pc). This combined data allows us to compute the SFE from the star formation rate (SFR) and the molecular gas mass (M</em>mol</em>{\rm{mol}}) as SFE = SFR/M<em>mol<em>{\rm{mol}}. We find that SESNe explode in environments that are currently forming stars eight times more efficiently than those of H-rich SNe (higher SFR for SESNe with similar M</em>mol</em>{\rm{mol}}). On one hand, this is consistent with the scenario in which the majority of SESNe are produced from very massive stars ($&gt; 20~\rm{M}<em>{\odot}$) if the initial mass function is top-heavy. On the other hand, most of SESN progenitor channels are formed from interacting binaries ($&lt; 20~\rm{M}</em>{\odot}$) if an increased binary system formation rate is connected with turbulences and, in turn, with the boost to SFE. Then, an increased binary fraction could explain the enhanced Hαα luminosities. In summary, SESNe preferentially occur in regions of intense, efficient star formation rather than simply higher gas content.

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