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    Primordial black holes and their mass spectra: The effects of mergers and accretion within stasis cosmologies

    Keith R. Dienes1,2,*, Lucien Heurtier3,†, Fei Huang4,‡, Tim M. P. Tait5,§, and Brooks Thomas6,∥

    • *Contact author: dienes@arizona.edu
    • †Contact author: lucien.heurtier@kcl.ac.uk
    • ‡Contact author: fei.huang@weizmann.ac.il
    • §Contact author: ttait@uci.edu
    • ∥Contact author: thomasbd@lafayette.edu

    Phys. Rev. D 112, 083547 – Published 23 October, 2025

    DOI: https://doi.org/10.1103/j6n4-cy1c

    Abstract

    A variety of processes in the very early Universe can give rise to a population of primordial black holes (PBHs) with an extended mass spectrum. For certain mass spectra of this sort, it has been shown that the evaporation of these PBHs into radiation can drive the universe toward an epoch of cosmological stasis which can persist for a significant number of e-folds of cosmological expansion. However, in general, the initial mass spectrum which characterizes a population of PBHs at the time of production can subsequently be distorted by processes such as mergers and accretion. In this paper, we examine the effects that these processes have on the spectra that lead to a PBH-induced stasis. Within such stasis models, we find that mergers have only a negligible effect on these spectra within the regime of interest for stasis. We likewise find that the effect of accretion is negligible in many cases of interest. However, we find that the effect of accretion on the PBH mass spectrum is non-negligible in situations in which this spectrum is particularly broad. In such situations, the stasis epoch is abridged or, in extreme cases, does not occur at all. Thus accretion plays a nontrivial role in constraining the emergence of stasis within scenarios which lead to extended PBH mass spectra.

    Physics Subject Headings (PhySH)

    See Also

    Primordial black holes place the Universe in stasis

    Keith R. Dienes, Lucien Heurtier, Fei Huang, Doojin Kim, Tim M. P. Tait, and Brooks Thomas
    Phys. Rev. D 112, 083546 (2025)

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