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How do Massive Primordial Black Holes Impact the Formation of the First Stars and Galaxies?
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abstract
We investigate the impact of massive primordial black holes (PBHs; $m_{\rm BH}\sim 10^6~M_{\odot}$) on the star formation and first galaxy assembly process using high-resolution hydrodynamical simulations from $z = 1100$ to $z \sim 9$. We find that PBH accretion is self-regulated by feedback, suppressing mass growth unless feedback is weak. PBHs accelerate structure formation by seeding dark matter halos and gravitationally attracting gas, but strong feedback can delay cooling and suppress star formation. In addition, the presence of baryon-dark matter streaming creates an offset between the PBH location and the peaks induced in gas density, promoting earlier and more efficient star formation compared to standard $\Lambda$CDM. By $z \sim 10$, PBH-seeded galaxies form dense star clusters, with PBH-to-stellar mass ratios comparable to observed high-$z$ AGN like UHZ-1. Our results support PBHs as viable SMBH seeds but do not exclude alternative scenarios. We emphasize that PBH-seeding provides a natural explanation for some of the newly-discovered overmassive SMBHs at high redshift, in particular those with extreme ratios of BH-to-dynamical (virial) mass that challenge standard formation channels. Future studies with ultra-deep JWST surveys, the Roman Space Telescope, and radio surveys with facilities such as SKA and HERA will be critical in distinguishing PBH-driven SMBH growth from other pathways.
Forward citations
Cited by 3 Pith papers
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Primordial black holes in cosmological simulations: growth prospects for supermassive black holes
First cosmological hydro simulations with directly modeled PBHs show 1000 solar mass PBHs can grow to 10^4 to 10^5 solar masses by z=20 only if f_PBH is around 10^-3, not 10^-4.
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Primordial Black Holes and the First Stars
Massive primordial black holes shift Population III star formation to higher redshifts while lower-mass ones can delay it, and the resulting collapse redshifts yield new abundance constraints.
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Black Hole Feedback, Galaxy Quenching and Outflows at Cosmic Dawn: Analysis of the SEEDZ Simulations
In the SEEDZ simulations, massive black holes grow to ~10^6 M_sun by z=12.5, then their own feedback evacuates the host galaxy's gas, imposing a model-dependent mass limit that observations may soon test.
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