English

Black hole formation in the context of dissipative dark matter

Cosmology and Nongalactic Astrophysics 2019-03-20 v1 Astrophysics of Galaxies High Energy Physics - Phenomenology

Abstract

Black holes with masses of 106109 M\rm 10^6-10^9~M_{\odot} dwell in the centers of most galaxies, but their formation mechanisms are not well known. A subdominant dissipative component of dark matter with similar properties to the ordinary baryons, known as mirror dark matter, may collapse to form massive black holes during the epoch of first galaxies formation. In this study, we explore the possibility of massive black hole formation via this alternative scenario. We perform three-dimensional cosmological simulations for four distinct halos and compare their thermal, chemical and dynamical evolution in both the ordinary and the mirror sectors. We find that the collapse of halos is significantly delayed in the mirror sector due to the lack of H2\rm H_2 cooling and only halos with masses above 107 M \rm \geq 10^7~ M_{\odot} are formed. Overall, the mass inflow rates are 102 M/yr\rm \geq 10^{-2}~M_{\odot}/yr and there is less fragmentation. This suggests that the conditions for the formation of massive objects, including black holes, are more favorable in the mirror sector.

Keywords

Cite

@article{arxiv.1812.03104,
  title  = {Black hole formation in the context of dissipative dark matter},
  author = {M. A. Latif and A. Lupi and D. R. G. Schleicher and G. D'Amico and P. Panci and S. Bovino},
  journal= {arXiv preprint arXiv:1812.03104},
  year   = {2019}
}