Impact of dust cooling on direct collapse black hole formation
Abstract
Observations of quasars at suggest the presence of black holes with a few times . Numerous models have been proposed to explain their existence including the direct collapse which provides massive seeds of . The isothermal direct collapse requires a strong Lyman-Werner flux to quench formation in massive primordial halos. In this study, we explore the impact of trace amounts of metals and dust enrichment. We perform three dimensional cosmological simulations for two halos of with illuminated by an intense Lyman Werner flux of . Our results show that initially the collapse proceeds isothermally with K but dust cooling becomes effective at densities of and brings the gas temperature down to a few 100-1000 K for . No gravitationally bound clumps are found in cases by the end of our simulations in contrast to the case with . Large inflow rates of are observed for similar to a zero-metallicity case while for the inflow rate starts to decline earlier due to the dust cooling and fragmentation. For given large inflow rates a central star of may form for .
Keywords
Cite
@article{arxiv.1509.07034,
title = {Impact of dust cooling on direct collapse black hole formation},
author = {M. A. Latif and K. Omukai and M. Habouzit and D. R. G. Schleicher and M. Volonteri},
journal= {arXiv preprint arXiv:1509.07034},
year = {2016}
}
Comments
Accepted for publication in ApJ, comments are still welcome