English

Primordial Black Holes Evaporating before Big Bang Nucleosynthesis

Cosmology and Nongalactic Astrophysics 2026-05-07 v3 High Energy Physics - Phenomenology

Abstract

Primordial black holes (PBHs) formed from the collapse of density fluctuations provide a unique window into the physics of the early Universe. Their evaporation through Hawking radiation around the epoch of Big Bang nucleosynthesis (BBN) can leave measurable imprints on the primordial light-element abundances. In this work, we analyze in detail the effects of PBHs evaporating before BBN, with various intermediate steps understood analytically, and obtain the BBN constraint on PBHs within a transparent and reproducible framework. We find that, to produce observable effects on BBN, the PBH mass must exceed 10910^{9} g, a threshold higher than that reported in some earlier studies. Slightly above 10910^{9} g, the BBN sensitivity rapidly increases with the mass and then decreases, with the turning point occurring at 2×1092\times10^{9} g. For PBHs in the mass range [109, 1010][10^{9},\ 10^{10}] g, current measurements of BBN observables set an upper bound on the initial mass fraction parameter β\beta ranging from 101710^{-17} to 101910^{-19}. To facilitate future improvements, we make our code publicly available, enabling straightforward incorporation of updated nuclear reaction rates, particle-physics inputs, and cosmological data.

Keywords

Cite

@article{arxiv.2509.05618,
  title  = {Primordial Black Holes Evaporating before Big Bang Nucleosynthesis},
  author = {Quan-feng Wu and Xun-Jie Xu},
  journal= {arXiv preprint arXiv:2509.05618},
  year   = {2026}
}

Comments

26 pages, 7 figures, a few typos in equations fixed, code available at https://github.com/Fenyutanchan/Primordial-Black-Hole.git