Rapid emergence of overmassive black holes in the early Universe

Fuente: arXiv
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Main Authors: Chon, Sunmyon, Hirano, Shingo, Ishiyama, Tomoaki, Chang, Seok-Jun, Springel, Volker
Format: Preprint
Published: 2026
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author Chon, Sunmyon
Hirano, Shingo
Ishiyama, Tomoaki
Chang, Seok-Jun
Springel, Volker
author_facet Chon, Sunmyon
Hirano, Shingo
Ishiyama, Tomoaki
Chang, Seok-Jun
Springel, Volker
contents The origin of supermassive black holes (SMBHs) remains a long-standing problem in astrophysics. Recent JWST observations reveal an unexpectedly abundant population of overmassive black holes at z>4-6, where the BH masses lie far above local scaling relations and not reproduced by current cosmological models. How such overmassive black holes form and rapidly grow within young galaxies has remained unclear. Here we present fully cosmological radiation-hydrodynamic simulations that, for the first time, self-consistently follow the birth, early growth, and emergent observable signatures of SMBHs in proto-cluster environments. We find that heavy seeds of order $10^6 M_\text{sun}$ naturally form, exceeding typical theoretical expectations by an order of magnitude. These seeds rapidly develop dense, optically thick disks whose strong electron scattering produces broad H$α$ emission comparable to that seen in little red dots (LRDs). Sustained super-Eddington accretion then drives fast growth to $\sim 3 \times 10^7 ~M_\text{sun}$ by $z \sim 8$. These results provide a unified physical scenario in which LRDs correspond to a short-lived, enshrouded phase of heavy-seed formation, naturally evolving into the overmassive quasars detected by JWST and ultimately the progenitors of today's SMBHs.
format Preprint
id arxiv_https___arxiv_org_abs_2601_04955
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Rapid emergence of overmassive black holes in the early Universe
Chon, Sunmyon
Hirano, Shingo
Ishiyama, Tomoaki
Chang, Seok-Jun
Springel, Volker
Astrophysics of Galaxies
Cosmology and Nongalactic Astrophysics
Solar and Stellar Astrophysics
The origin of supermassive black holes (SMBHs) remains a long-standing problem in astrophysics. Recent JWST observations reveal an unexpectedly abundant population of overmassive black holes at z>4-6, where the BH masses lie far above local scaling relations and not reproduced by current cosmological models. How such overmassive black holes form and rapidly grow within young galaxies has remained unclear. Here we present fully cosmological radiation-hydrodynamic simulations that, for the first time, self-consistently follow the birth, early growth, and emergent observable signatures of SMBHs in proto-cluster environments. We find that heavy seeds of order $10^6 M_\text{sun}$ naturally form, exceeding typical theoretical expectations by an order of magnitude. These seeds rapidly develop dense, optically thick disks whose strong electron scattering produces broad H$α$ emission comparable to that seen in little red dots (LRDs). Sustained super-Eddington accretion then drives fast growth to $\sim 3 \times 10^7 ~M_\text{sun}$ by $z \sim 8$. These results provide a unified physical scenario in which LRDs correspond to a short-lived, enshrouded phase of heavy-seed formation, naturally evolving into the overmassive quasars detected by JWST and ultimately the progenitors of today's SMBHs.
title Rapid emergence of overmassive black holes in the early Universe
topic Astrophysics of Galaxies
Cosmology and Nongalactic Astrophysics
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2601.04955