English

Modeling Supermassive Primordial Stars with MESA

Solar and Stellar Astrophysics 2023-03-15 v2 Astrophysics of Galaxies High Energy Astrophysical Phenomena

Abstract

Supermassive stars forming at zz \sim 15 - 20 are one of the leading contenders for the origin of the first quasars, over 200 of which have now been discovered at z>z > 6. These stars likely form in pristine, atomically cooled haloes immersed in strong Lyman-Werner UV backgrounds or in highly supersonic baryon streaming flows. Atomic cooling triggers catastrophic baryon collapse capable of building up stars at rates of up to \sim1 M_{\odot} yr1^{-1}. Here we examine the evolution of supermassive stars with a much larger and finer grid of accretion rates than in previous studies with the \texttt{MESA} stellar evolution code. We find that their final masses range from 3.5 ×\times 103^3 M_{\odot} - 3.7 ×\times 105^5 M_{\odot} at accretion rates of 0.001 M_{\odot} yr1^{-1} - 1 M_{\odot} yr1^{-1}, respectively. We also find that supermassive star evolution diverges at accretion rates of 0.01 M_{\odot} yr1^{-1} - 0.02 M_{\odot} yr1^{-1}, above which they evolve as cool red hypergiants along the Hayashi track and collapse via the general relativistic instability during central hydrogen burning, and below which they evolve as hot blue supergiants and collapse at the end of their nuclear burning lifetimes after exiting the main sequence.

Keywords

Cite

@article{arxiv.2208.00008,
  title  = {Modeling Supermassive Primordial Stars with MESA},
  author = {Nicholas P. Herrington and Daniel J. Whalen and Tyrone E. Woods},
  journal= {arXiv preprint arXiv:2208.00008},
  year   = {2023}
}

Comments

11 pages, 10 figures, accepted by MNRAS

R2 v1 2026-06-25T01:20:26.175Z