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    Extended mass distribution of PBHs during the QCD phase transition: Stochastic gravitational wave backgrounds and mini-extreme mass ratio inspirals

    Nilanjandev Bhaumik*, Huai-Ke Guo†, and Si-Jiang Liu‡

    • *Contact author: nilanjandevbhaumik@gmail.com
    • †Contact author: guohuaike@ucas.ac.cn
    • ‡Contact author: liusijiang22@mails.ucas.ac.cn

    Phys. Rev. D 112, 123550 – Published 31 December, 2025

    DOI: https://doi.org/10.1103/d876-1jxk

    Abstract

    Primordial black holes (PBHs) are one of the most important tracers of cosmic history. In this work, we investigate the formation of PBHs around the time of the QCD phase transition from a broadly peaked inflationary scalar power spectrum, which naturally produces an extended PBH mass function. This scenario yields two distinct stochastic gravitational wave backgrounds (SGWB): (i) scalar-induced, second-order tensor perturbations generated at PBH formation, and (ii) a merger-driven SGWB from the subsequent PBH binary population. Using Bayesian analysis, we examine both SGWB channels with the data from the NANOGrav 15-year dataset and the first three observing runs of LIGO-Virgo-KAGRA (LVK). We also forecast continuous-wave signals from mini-extreme mass ratio inspirals (mini-EMRIs) for direct comparison with NANOGrav and LVK constraints. Our parameter scans identify regions of the parameter space where the combined SGWB is detectable in future ground-based and space-based detectors. A broad PBH mass distribution naturally gives rise to mini-EMRIs, which future ground-based observatories, such as LVK A+, Einstein Telescope (ET), and Cosmic Explorer (CE), can detect. For a large part of the PBH parameter space, the SGWB of astrophysical origin masks the primordial SGWB in the frequency band of ground-based detectors. Thus, for extended PBH mass distributions, we find that the detection of mini-EMRIs is a more robust channel for probing the PBH parameter space than the corresponding SGWB.

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