English

Can GW231123 have a stellar origin?

High Energy Astrophysical Phenomena 2026-02-19 v2 Astrophysics of Galaxies Solar and Stellar Astrophysics General Relativity and Quantum Cosmology

Abstract

The gravitational wave event GW231123 detected by the LIGO interferometers during their fourth observing run features two black holes with source-frame masses of 13718+23M137^{+23}_{-18} M_\odot and 10150+22M101^{+22}_{-50} M_\odot -- in the range of the pair-instability black hole mass gap predicted by standard stellar evolution theory. Both black holes are also inferred to be rapidly spinning (χ10.9\chi_1 \simeq 0.9, χ20.8\chi_2 \simeq 0.8). The primary object in GW231123 is the heaviest stellar mass black hole detected to date, which, together with its extreme rotation, raises questions about its astrophysical origin. Accounting for the unusually large spin of 0.9\sim 0.9 with hierarchical mergers requires some degree of fine tuning. We investigate whether such a massive, highly spinning object could plausibly form from the collapse of a single rotating massive star. We simulate stars with an initial core mass of 160M160\,M_\odot -- sufficient to produce BH masses at the upper edge of the 90\% credible interval for m1m_1 in GW231123 -- across a range of rotation rates and 12C(α,γ)16O^{12}\mathrm{C}(\alpha,\gamma)^{16}\mathrm{O} reaction rates. We allow for differential rotation to explore the high-spin regime. In this limit of weak angular momentum transport, we find that: (i) rotation shifts the pair-instability mass gap to higher masses, introducing an important correlation between masses and spins in gravitational wave predictions; and (ii) highly spinning BHs with masses 150M\gtrsim 150 \rm M_\odot can form above the mass gap. Our results suggest that the primary object of GW231123 may be the first directly observed black hole that formed via direct core collapse following the photodisintegration instability.

Keywords

Cite

@article{arxiv.2508.10088,
  title  = {Can GW231123 have a stellar origin?},
  author = {Djuna Croon and Davide Gerosa and Jeremy Sakstein},
  journal= {arXiv preprint arXiv:2508.10088},
  year   = {2026}
}

Comments

5 pages, 2 figures. Updated to version published in MNRAS

R2 v1 2026-07-01T04:48:42.675Z