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Massive black holes in galactic nuclei: Theory and Simulations
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Massive black holes are fundamental constituents of our cosmos, from the Big Bang to today. Understanding their formation from cosmic dawn, their growth, and the emergence of the first, rare quasars in the early Universe remains one of our greatest theoretical and observational challenges. Hydrodynamic cosmological simulations self-consistently combine the processes of structure formation at cosmological scales with the physics of smaller, galaxy scales. They capture our most realistic understanding of massive black holes and their connection to galaxy formation and have become the primary avenue for theoretical research in this field. The space-based gravitational wave interferometer, LISA, will open up new investigations into the dynamical processes involving massive black holes. Multi-messenger astrophysics brings new exciting prospects for tracing the origin, growth and merger history of massive black holes across cosmic ages.
Forward citations
Cited by 3 Pith papers
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Hunting Wandering 3<z<8 Black Holes: Spatial Offsets in Ionization Ratio and Continuum Emission
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Large-scale dual AGN in large-scale cosmological hydrodynamical simulations
Across nine cosmological simulations, dual AGN number densities range from 1e-8 to 1e-3 cMpc^-3 at z = 0-7, with fractions of 0-6% and a redshift peak at z = 1-3.
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Hydrodynamic methods and sub-resolution models for cosmological simulations
A review chapter summarizes hydrodynamic solvers and subgrid models for cosmological simulations, arguing that the choice of sub-resolution prescriptions materially changes predicted galaxy and cluster properties.
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