English

The black hole - pair instability boundary for high stellar rotation

Solar and Stellar Astrophysics 2025-04-25 v1 Astrophysics of Galaxies High Energy Astrophysical Phenomena

Abstract

The Pair Instability (PI) boundary is crucial for understanding heavy merging Black Holes (BHs) and the second mass gap's role in galactic chemical evolution. So far, no works have critically and systematically examined how rotation and mass loss affect the PI boundary or BH masses below it. Rapid rotation significantly alters stellar structure and mass loss, which is expected to have significant effects on the evolution of stellar models. We have previously derived a critical core mass independent of stellar evolution parameters, finding the BH (Pulsational) PI boundary at MCO,crit=36.3MM_{ CO, crit} = 36.3 M_\odot for a carbon-oxygen (CO) core. Using MESA, we model massive stars around the PI boundary for varying rotation rates and metallicities. We implement mechanical mass loss in MESA, studying its effects on massive stars in low-metallicity environments. Below 1/1001/100th ZZ_\odot, mechanical mass loss dominates over radiative winds. We check the BH-PI boundary for rapid rotators to confirm our critical core mass criterion and derive model fits describing rotation's impact on core and final masses. Fast rotators reach a point (typically Ω/Ωcrit0.6\Omega / \Omega_{crit} \approx 0.6) where the entire star becomes chemically homogeneous, evolving like a stripped star. This lowers the maximum BH mass before PI to its critical core mass of MCO,crit=36.3MM_{CO, crit} = 36.3 M_\odot, aligning with the bump feature in the BH mass distribution observed by LIGO/VIRGO.

Keywords

Cite

@article{arxiv.2504.17009,
  title  = {The black hole - pair instability boundary for high stellar rotation},
  author = {Ethan R. J. Winch and Gautham N. Sabhahit and Jorick S. Vink and Erin R. Higgins},
  journal= {arXiv preprint arXiv:2504.17009},
  year   = {2025}
}

Comments

16 pages, 13 figures. Accepted by MNRAS on 23rd April 2025