A No-Go Theorem for Direct Collapse Black Holes Without a Strong Ultraviolet Background
arXiv:1403.1293 · doi:10.1093/mnrasl/slu063
Abstract
Explaining the existence of supermassive black holes (SMBHs) larger than at redshifts remains an open theoretical question. One possibility is that gas collapsing rapidly in pristine atomic cooling halos () produces black holes. Previous studies have shown that the formation of such a black hole requires a strong UV background to prevent molecular hydrogen cooling and gas fragmentation. Recently it has been proposed that a high UV background may not be required for halos that accrete material extremely rapidly or for halos where gas cooling is delayed due to a high baryon-dark matter streaming velocity. In this work, we point out that building up a halo with before molecular cooling becomes efficient is not sufficient for forming a direct collapse black hole (DCBH). Though molecular hydrogen formation may be delayed, it will eventually form at high densities leading to efficient cooling and fragmentation. The only obvious way that molecular cooling could be avoided in the absence of strong UV radiation, is for gas to reach high enough density to cause collisional dissociation of molecular hydrogen () before cooling occurs. However, we argue that the minimum core entropy, set by the entropy of the intergalactic medium (IGM) when it decouples from the CMB, prevents this from occurring for realistic halo masses. This is confirmed by hydrodynamical cosmological simulations without radiative cooling. We explain the maximum density versus halo mass in these simulations with simple entropy arguments. The low densities found suggest that DCBH formation indeed requires a strong UV background.
5 pages, 5 figures, replaced with version accepted by MNRAS
References in corpus (7)
- A luminous quasar at a redshift of z = 7.085
- Accretion onto the First Stellar Mass Black Holes
- Fluctuations in the High-Redshift Lyman-Werner Background: Close Halo Pairs as the Origin of Supermassive Black Holes
- Can Supermassive Black Holes Form in Metal-Enriched High-Redshift Protogalaxies ?
- The aftermath of the first stars: massive black holes
- Star Formation in the First Galaxies I: Collapse Delayed by Lyman-Werner Radiation
- Cosmological Simulations of the Preheating Scenario for Galaxy Cluster Formation: Comparison to Analytic Models and Observations
Cited by in corpus (24)
- Formation of massive black holes in rapidly growing pre-galactic gas clouds
- Feedback-regulated Super Massive Black Hole Seed Formation
- The critical radiation intensity for direct collapse black hole formation: dependence on the radiation spectral shape
- Formation of massive protostars in atomic cooling haloes
- Direct collapse black hole formation from synchronized pairs of atomic cooling halos
- The formation of direct collapse black holes under the influence of streaming velocities
- A UV flux constraint on the formation of direct collapse black holes
- The Direct Collapse of a Massive Black Hole Seed Under the Influence of an Anisotropic Lyman-Werner Source
- Radiation hydrodynamics simulations of the formation of direct-collapse supermassive stellar systems
- Light, medium-weight or heavy? The nature of the first supermassive black hole seeds
- The suppression of direct collapse black hole formation by soft X-ray irradiation
- The formation of massive primordial stars in the presence of moderate UV backgrounds
- Multi-flavour SMBH seeding and evolution in cosmological environments
- Starbursts in low-mass haloes at Cosmic Dawn. I. The critical halo mass for star formation
- Songlines from Direct Collapse Seed Black Holes: Effects of X-rays on Black Hole Growth and Stellar Populations
- A self-consistent semi-analytic model for Population III star formation in minihalos
- Evolution of high-redshift quasar hosts and promotion of massive black hole seed formation
- Driving the Growth of the Earliest Supermassive Black Holes with Major Mergers of Host Galaxies
- The impact and response of minihalos and the inter-halo medium on cosmic reionization
- SMBH growth parameters in the early Universe of Millennium and Millennium-II simulations
- Submillimeter signatures from growing supermassive black holes before reionization
- Maximally Rotating Supermassive Stars at the Onset of Collapse: Effects of Gas Pressure
- Direct Collapse Black Hole Candidates from Decaying Dark Matter
- Off-center black hole seed formation? Implications for high and low redshift massive black holes