English

Witnessing the birth of a supermassive protostar

Astrophysics of Galaxies 2016-02-17 v2 Cosmology and Nongalactic Astrophysics

Abstract

The detection of z>6\rm z>6 quasars reveals the existence of supermassive black holes of a few 109 M\rm 10^9~M_{\odot}. One of the potential pathways to explain their formation in the infant universe is the so-called direct collapse model which provides massive seeds of 105106 M\rm 10^5-10^6~M_{\odot}. An isothermal direct collapse mandates that halos should be of a primordial composition and the formation of molecular hydrogen remains suppressed in the presence of a strong Lyman Werner flux. In this study, we perform high resolution cosmological simulations for two massive primordial halos employing a detailed chemical model which includes H\rm H^- cooling as well as realistic opacities for both the bound-free H\rm H^- emission and the Rayleigh scattering of hydrogen atoms. We are able to resolve the collapse up to unprecedentedly high densities of 103 g/cm3\rm \sim 10^{-3}~g/cm^3 and to scales of about 104\rm 10^{-4} AU. Our results show that the gas cools down to \rm \sim 5000 K in the presence of H\rm H^- cooling, and induces fragmentation at scales of about 8000 AU in one of the two simulated halos, which may lead to the formation of a binary. In addition, fragmentation also occurs on the AU scale in one of the halos but the clumps are expected to merge on short time scales. Our results confirm that H\rm H^- cooling does not prevent the formation of a supermassive star and the trapping of cooling radiation stabilises the collapse on small scales.

Keywords

Cite

@article{arxiv.1510.02788,
  title  = {Witnessing the birth of a supermassive protostar},
  author = {Muhammad A. Latif and Dominik R. G. Schleicher and Tilman Hartwig},
  journal= {arXiv preprint arXiv:1510.02788},
  year   = {2016}
}

Comments

Accpeted version, to appear in MNRAS, comments are still welcome and high resolution version is available at http://www2.iap.fr/users/latif/DCBH.pdf