Hyper-Eddington Black Hole Growth in Star-Forming Molecular Clouds and Galactic Nuclei: Can It Happen?
arXiv:2208.05025 · doi:10.1093/mnras/stac3245
Abstract
Formation of supermassive black holes (BHs) remains a theoretical challenge. In many models, especially beginning from stellar relic "seeds," this requires sustained super-Eddington accretion. While studies have shown BHs can violate the Eddington limit on accretion disk scales given sufficient "fueling" from larger scales, what remains unclear is whether or not BHs can actually capture sufficient gas from their surrounding ISM. We explore this in a suite of multi-physics high-resolution simulations of BH growth in magnetized, star-forming dense gas complexes including dynamical stellar feedback from radiation, stellar mass-loss, and supernovae, exploring populations of seeds with masses . In this initial study, we neglect feedback from the BHs: so this sets a strong upper limit to the accretion rates seeds can sustain. We show that stellar feedback plays a key role. Complexes with gravitational pressure/surface density below are disrupted with low star formation efficiencies so provide poor environments for BH growth. But in denser cloud complexes, early stellar feedback does not rapidly destroy the clouds but does generate strong shocks and dense clumps, allowing of randomly-initialized seeds to encounter a dense clump with low relative velocity and produce runaway, hyper-Eddington accretion (growing by orders of magnitude). Remarkably, mass growth under these conditions is almost independent of initial BH mass, allowing rapid IMBH formation even for stellar-mass seeds. This defines a necessary (but perhaps not sufficient) set of criteria for runaway BH growth: we provide analytic estimates for the probability of runaway growth under different ISM conditions.
Final version matching the publication
References in corpus (18)
- Theory of Star Formation
- Formation of Massive Galaxies at High Redshift: Cold Streams, Clumpy Disks and Compact Spheroids
- Formation of Supermassive Black Holes by Direct Collapse in Pregalactic Halos
- Analytical theory for the initial mass function: CO clumps and prestellar cores
- Direct cosmological simulations of the growth of black holes and galaxies
- The Density Probability Distribution in Compressible Isothermal Turbulence: Solenoidal versus Compressive Forcing
- A Luminous Quasar at Redshift 7.642
- Formation of z ~ 6 quasars from hierarchical galaxy mergers
- Dissipation and Extra Light in Galactic Nuclei: II. 'Cusp' Ellipticals
- Dissipation and Extra Light in Galactic Nuclei: I. Gas-Rich Merger Remnants
- Suppression of star formation in early-type galaxies by feedback from supermassive black holes
- Dissipation and the Fundamental Plane: Observational Tests
- Disruption of giant molecular clouds and formation of bound star clusters under the influence of momentum stellar feedback
- Formation of SMBH seeds in Pop III star clusters through collisions : the importance of mass loss
- The Formation of the First Quasars. I. The Black Hole Seeds, Accretion and Feedback Models
- The Star Formation Rate - Dense Gas Relation in the Nuclei of Nearby Galaxies
- Structure of the super-Eddington outflow and itsimpact on the cosmological scale
- Super-Eddington accretion in the Q2237+0305 quasar?
Cited by in corpus (13)
- A Candidate of a Least-Massive Black Hole at the First 1.1 Billion Years of the Universe
- Growing Black Holes through Successive Mergers in Galactic Nuclei: I. Methods and First Results
- From Seeds to Supermassive Black Holes: Capture, Growth, Migration, and Pairing in Dense Proto-Bulge Environments
- Self-regulation of black hole accretion via jets in early protogalaxies
- Early formation of supermassive black holes from the collapse of strongly self-interacting dark matter
- Feedback-regulated Seed Black Hole Growth in Star-Forming Molecular Clouds and Galactic Nuclei
- The Noctua Suite of Simulations -- The Difficulty of Growing Massive Black Holes in Low-Mass Dwarf Galaxies
- Physical Processes Behind the Co-Evolution of Halos, Galaxies and Supermassive Black Holes in the IllustrisTNG Simulation
- Growth of Light Seed Black Holes in the Early Universe
- Thick Disks, Thin Hopes: Suppressed Capture and Merger Rates in AGN
- Super-Eddington Growth Ceiling: Analytic Constraints on the Rapid Growth of Light-Seed Black Holes in Massive Clumps
- Early Stages of Dusty Tori: The First Infrared Spectra from a Highly Multiscale Quasar Simulation
- The In Situ Growth of Stellar-mass "Light" Seed Black Holes in Nuclear Star Clusters