Overmassive central black holes in the cosmological simulations astrid and Illustris TNG50

Author:

Weller Emma Jane1,Pacucci Fabio12ORCID,Natarajan Priyamvada234ORCID,Di Matteo Tiziana56ORCID

Affiliation:

1. Center for Astrophysics | Harvard & Smithsonian , Cambridge, MA 02138, USA

2. Black Hole Initiative, Harvard University , Cambridge, MA 02138, USA

3. Department of Astronomy, Yale University , New Haven, CT 06511, USA

4. Department of Physics, Yale University , New Haven, CT 06520, USA

5. McWilliams Center for Cosmology, Department of Physics, Carnegie Mellon University , Pittsburgh, PA 15213, USA

6. NSF AI Planning Institute for Physics of the Future, Carnegie Mellon University , Pittsburgh, PA 15213, USA

Abstract

ABSTRACT Recent dynamical measurements indicate the presence of a central supermassive black hole (SMBH) with mass ${\sim} 3\times 10^6\, {\rm M_\odot }$ in the dwarf galaxy Leo I, placing the system ∼50 times above the standard, local MBH–M⋆ relation. While a few overmassive central SMBHs are reported in nearby isolated galaxies, this is the first one detected in a Milky Way satellite. We used the ASTRID and Illustris TNG50 lambda cold dark matter (LCDM) cosmological simulations to investigate the assembly history of galaxies hosting overmassive SMBHs. We estimate that, at the stellar mass of Leo I, ${\sim} 15~{{\ \rm per\ cent}}$ of galaxies above the MBH–M⋆ relation lie >10 times above it. Leo I-like systems are rare but exist in LCDM simulations: they occur in ${\sim} 0.005~{{\ \rm per\ cent}}$ of all overmassive systems. Examining the properties of simulated galaxies harbouring overmassive central SMBHs, we find that: (i) stars assemble more slowly in galaxies above the MBH–M⋆ relation; (ii) the gas fraction in these galaxies experiences a significantly steeper decline over time; and (iii) $\gt 95~{{\ \rm per\ cent}}$ of satellite host galaxies in overdense regions are located above the MBH–M⋆ relation. This suggests that massive satellite infall and consequent tidal stripping in a group/dense environment can drive systems away from the MBH–M⋆ relation, causing them to become overmassive. As the merging histories of overmassive and undermassive systems do not differ, we conclude that additional environmental effects, such as being in overdense regions must play a crucial role. In the high-z Universe, central overmassive SMBHs are a signature of heavy BH seeds; we demonstrate, in contrast, that low-z overmassive systems result from complex environmental interactions.

Funder

Smithsonian Astrophysical Observatory

John Templeton Foundation

Gordon and Betty Moore Foundation

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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