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    Massive black holes seeded by dark matter: Implications for little red dots and gravitational wave signatures

    Tingwei Shen1,*, Xuejian Shen2,†, Huangyu Xiao3,4,‡, Mark Vogelsberger2, and Fangzhou Jiang5

    • *Contact author: shencharline8@gmail.com
    • †Contact author: xuejian@mit.edu
    • ‡Contact author: huangyu@fnal.gov

    Phys. Rev. D 114, 023048 – Published 24 July, 2026

    DOI: https://doi.org/10.1103/1m1z-7lhm

    Abstract

    Observations of supermassive black holes (SMBHs) at high redshifts challenge standard seeding scenarios. We examine a dissipative self-interacting dark matter (dSIDM) model in which gravothermal collapse leads to the formation of massive BH seeds ab initio. We utilize a semianalytical framework to predict properties of the dSIDM-seeded SMBH population. Billion solar mass quasars are reproduced along with low-mass faint active galactic nuclei (known as little red dots) with SMBH-to-galaxy stellar mass ratios consistent with recent James Webb Space Telescope observations. To match the abundance of the observed bright quasars, a subpercent-level duty cycle is suggested, implying a large population of dormant SMBHs. The gravitational wave (GW) signals from mergers of these massive SMBHs can be detected by LISA while remaining within the NANOGrav constraints on the GW background. These results provide testable signatures of DM-driven SMBH formation, offering a pathway to probe hidden-sector physics through SMBH and GW observables.

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