English

Impacts of hydrogen envelope on supernova fallback and the resulting compact remnant masses

High Energy Astrophysical Phenomena 2025-12-15 v1 Astrophysics of Galaxies Solar and Stellar Astrophysics

Abstract

Fallback in core-collapse supernovae plays a central role in setting compact-remnant masses and may produce late-time emission. In hydrogen rich progenitors, the reverse shock arising at the hydrogen-helium interface has the potential to dramatically enhance fallback, yet its overall impact across a broad explosion-energy range has not been systematically quantified. Using one-dimensional hydrodynamic simulations for metal-poor progenitors with MZAMS=18M_{\rm ZAMS}=18-28M28\,M_\odot and models with and without hydrogen envelopes, we explore fallback over explosion energies of 104810^{48}-1052erg10^{52}\,{\rm erg}. We find a robust and universal mass-transition behaviour: when the explosion energy reaches only 22-33 times the binding energy of the hydrogen envelope, the reverse shock returns to the centre and sharply increases the remnant mass by 2M\gtrsim 2\,M_\odot. Above this threshold, the reverse shock escapes and hydrogen-rich and stripped-envelope progenitors yield nearly identical remnant masses. By normalizing the results with the envelope binding energy, we show that all progenitor models converge to a common fallback relation. We further provide a simple analytic prescription that connects explosion energy, hydrogen-envelope binding energy, and final compact-remnant mass. This relation provides an important link between progenitor properties and compact-remnant masses, and is useful for population-synthesis and galactic chemical-evolution studies.

Keywords

Cite

@article{arxiv.2512.11404,
  title  = {Impacts of hydrogen envelope on supernova fallback and the resulting compact remnant masses},
  author = {Kengo Shinoda and Yudai Suwa and Ryosuke Hirai and Ryo Sawada and Kengo Tomida and Kazunari Iwasaki and Takeru K. Suzuki},
  journal= {arXiv preprint arXiv:2512.11404},
  year   = {2025}
}

Comments

11 pages, 11 figures, 1 table; submitted to MNRAS