The Emergence of the First Star-Free Atomic Cooling Haloes in the Universe

Regan, J., Wise, J., O’Shea, B., & Norman, M., 2019, Submitted to MNRAS.

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Summary

Abstract

Regan and collaborators use the Renaissance Simulations to search for metal-free, star-free atomic-cooling halos that could form direct-collapse black holes. They identify 79 candidates, most of which form in the dense Rarepeak region. The results show that rapid halo growth, moderate Lyman-Werner radiation, and avoiding metal pollution must work together to keep these halos star-free until they reach the atomic-cooling threshold.

1. Introduction

  • Direct-collapse black holes are heavy seeds that could help explain how supermassive black holes formed so early.
  • Their host halos must avoid ordinary Population III star formation and remain free of metals while growing.
  • The paper tests whether rapid halo growth can delay star formation without requiring an extremely strong radiation field.

2. Renaissance Simulation Suite

  • The simulations follow early star formation, radiation, chemistry, metal enrichment, and halo growth in dense, average-density, and void regions.
  • Candidate halos are required to be metal-free, star-free, and massive enough for atomic hydrogen cooling.

3.1 Candidate Abundance

  • The study finds 79 candidate halos: 76 in the Rarepeak region and three in the Normal region.
  • No candidates appear in the Void region, showing that dense environments strongly favor their formation.

3.2 Required Physical Conditions

  • Most candidates are located about 10–100 kiloparsecs from the nearest massive galaxy and receive moderate Lyman-Werner radiation.
  • Their radiation levels are usually far below the intensity previously thought necessary to completely suppress molecular-hydrogen cooling.

3.3 Radiation, Metallicity, and Rapid Growth

  • Most candidate halos grow rapidly before reaching the atomic-cooling limit, producing dynamical heating that delays gas collapse.
  • Rapid growth alone is not enough: a halo that becomes metal-enriched can cool and form stars even while growing quickly.
  • Successful candidates combine fast growth, low metallicity, and enough Lyman-Werner radiation to limit molecular cooling.

3.4 Synchronized Halos

  • The authors identify five pairs of pristine atomic-cooling halos that form close together in both space and time.
  • Radiation from the first halo in a pair could help keep the second halo star-free and support direct-collapse black-hole formation.

4. Discussion and Conclusions

  • Dynamical heating from rapid growth is the main process keeping most candidate halos star-free until atomic cooling begins.
  • Metal transport must be modeled carefully because external enrichment can remove an otherwise promising candidate.
  • High-resolution follow-up simulations are needed to determine whether these halos form supermassive stars, dense star clusters, or black holes.

Best Figures

Figure 1
Number of direct-collapse black-hole candidate halos found with redshift
Most of the 79 candidate halos form in the dense Rarepeak region, while only three form in the Normal region and none form in the Void.
Figure 4
Mass-growth histories of direct-collapse black-hole candidate halos
Most candidates grow rapidly before crossing the atomic-cooling threshold, creating dynamical heating that helps delay ordinary star formation.