SEEDZ: Rapid Galaxy Assembly as a Pathway to Supermassive Stars, Dense Stellar Environments and Massive Black Hole Seeds
Lewis R. Prole, John A. Regan, Daxal Mehta, Devesh Nandal, Rüdiger Pakmor, Ricarda S. Beckmann, Michael Tremmel, Martin G. Haehnelt, Simon C. O. Glover, Ralf S. Klessen, John H. Wise, Sophie Koudmani, Martin A. Bourne, Debora Sijacki, John Brennan, Pelle van de Bor, Paul C. Clark
astro-ph.GA, astro-ph.CO, astro-ph.SR
Submitted: 2026-06-25
Comments: Submitted to the Open Journal of Astrophysics
License: http://creativecommons.org/licenses/by/4.0/
The gist: We investigate the assembly history of early galaxies in the SEEDZ hydrodynamic simulations, to investigate the high inflow rates believed to be required for the formation of supermassive stars
Terminology
Abstract
We investigate the assembly history of early galaxies in the SEEDZ hydrodynamic simulations, to investigate the high inflow rates believed to be required for the formation of supermassive stars (SMSs), dense stellar clusters and subsequently heavy seed black holes. Using a heavy seed formation criteria of > 1 M yr-1 flowing into 10 pc regions, we find that heavy seeds form in halos that grow rapidly compared to those halos that never meet the criteria. Halos with growth rates of 1 M yr-1 at their virial radius (scales of a few hundred pc) are able to sustain a flow rate of 0.1 M yr-1 into the inner 1 pc of the halo, maintaining higher density environments within the central 10 - 100 pc. These halos continue to grow rapidly after their initial collapse, typically forming heavy seeds about 100 Myr after forming their first stars and stellar mass black holes. By z=10, most heavy seeds form in regions of near-solar metallicity, although a minority of heavy seeds do continue to form in low metallicity (10-2 Z) regions. Under the assumption that a SMS forms as the progenitor to a heavy seed if it forms in a region of low (10-2 Z) metallicity, and can sustain high accretion rates above 0.02 M yr-1 throughout the SMS lifetime of 2 Myr, we find a number density of SMSs of 0.1 cMpc-3, meaning that only a fraction of 10-4 of these SMSs would need to be visible to JWST to account for the observed population of Little Red Dot galaxies.
Sources
- COSMOS-Web: The over-abundance and physical nature of "little red dots"--Implications for early galaxy and SMBH assembly
- X-ray View of Little Red Dots: Do They Host Supermassive Black Holes?
- The Small Sizes and High Implied Densities of `Little Red Dots' with Balmer Breaks Could Explain Their Broad Emission Lines Without an AGN
- The Little Blue and Red Dots Rosetta Stones: Non-Gaussian broad lines, hot dust, and X-ray weakness
- Little Red Dots host Black Hole Stars: A unified family of gas-reddened AGN revealed by JWST/NIRSpec spectroscopy
- Spectral Uniformity of Little Red Dots: A Natural Outcome of Coevolving Seed Black Holes and Nascent Starbursts
- UNCOVER: Candidate Red Active Galactic Nuclei at 3<z<7 with JWST and ALMA
- A "Black Hole Star" Reveals the Remarkable Gas-Enshrouded Hearts of the Little Red Dots
- Pulsational mass loss from supermassive stars creates the compact shells of Little Red Dots
- Significant Evidence of an AGN Contribution in GHZ2 at z = 12.34
- Black Hole Feedback, Galaxy Quenching and Outflows at Cosmic Dawn: Analysis of the SEEDZ Simulations
- Little red dots as young supermassive black holes in dense ionized cocoons
- Little Red Dot $-$ Host Galaxy $=$ Black Hole Star: A Gas-Enshrouded Heart at the Center of Every Little Red Dot
- CAPERS-LRD-z9: A Gas Enshrouded Little Red Dot Hosting a Broad-line AGN at z=9.288
- Exploring Active Galactic Nuclei and Little Red Dots with the Obelisk simulation
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