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UHZ1 and the other three most distant quasars observed: possible evidence for Supermassive Dark Stars

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arxiv 2312.13837 v1 pith:25ZVA6PC submitted 2023-12-21 astro-ph.GA astro-ph.CO

classification astro-ph.GAastro-ph.CO
keywords darkstarsquasarsuhz1firstsmdssmattersupermassive
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

The James Webb Space Telescope (JWST) has recently uncovered a new record-breaking quasar, UHZ1, at a redshift of $z\sim10$. This discovery continues JWST's trend of confronting the expectations from the standard $\Lambda$CDM model of cosmology with challenges. Namely, too many very massive galaxies and quasars have been observed at very high redshifts, when the universe was only a few hundred million years old. We have previously shown that Supermassive Dark Stars (SMDSs) may offer a solution to this puzzle. These fascinating objects would be the first stars in the universe, growing to be $\sim 10^5-10^7 M_{\odot}$ and shining as bright as $10^9$ suns. Unlike Population III stars (the major alternative proposed model for the first stars in the universe, which would also have zero metallicity and would be powered by nuclear fusion), SMDSs would be powered by dark matter heating (e.g. dark matter annihilation) and would be comparatively cooler. At the ends of their lives (when they run out of dark matter fuel), SMDSs would directly collapse into black holes, thus providing possible seeds for the first quasars. Previous papers have shown that to form at $z\sim10$, UHZ1 would require an incredibly massive seed ($\sim 10^4 -10^5 M_{\odot}$), which was assumed to be a Direct Collapse Black Hole (DCBH). In this paper, we demonstrate that Supermassive Dark Stars (SMDSs) offer an equally valid solution to the mystery of the first quasars, by examining the four most distant known quasars: UHZ1, J0313-1806, J1342+0928, and J1007+2115, with particular emphasis on UHZ1.

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  1. Reconstructing PTA measurements via early seeding of supermassive black holes

    astro-ph.CO 2025-07 conditional novelty 5.0 of 10

    Dark-star-seeded supermassive black holes with number density around 10^-3 per cubic megaparsec could dominate the PTA gravitational wave background, with PTA data capping the seed density near 0.1 per cubic megaparsec.

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