Direct cosmological simulations of the growth of black holes and galaxies
Tiziana Di Matteo (CMU), Joerg Colberg (CMU), Volker Springel (MPA),, Lars Hernquist (CfA), Debora Sijacki (MPA)

TL;DR
This paper presents advanced cosmological hydrodynamic simulations that self-consistently model galaxy and supermassive black hole formation, growth, and feedback, aligning well with observations and providing insights into early quasar development.
Contribution
First comprehensive simulation of galaxy and black hole co-evolution from initial conditions, incorporating detailed black hole physics and feedback mechanisms.
Findings
Black hole mass density matches observational estimates.
Black hole growth peaks at lower redshift than star formation.
Strong correlations between black hole mass and galaxy properties.
Abstract
We investigate the coupled formation and evolution of galaxies and their embedded supermassive black holes using state-of-the-art hydrodynamic simulations of cosmological structure formation. For the first time, we self-consistently follow the dark matter dynamics, radiative gas cooling, star formation, as well as black hole growth and associated feedback processes, starting directly from initial conditions appropriate for the LambdaCDM cosmology. Our modeling of the black hole physics is based on an approach we have developed in simulations of isolated galaxy mergers. Here we examine: (i) the predicted global history of black hole mass assembly (ii) the evolution of the local black hole-host mass correlations and (iii) the conditions that allow rapid growth of the first quasars, and the properties of their hosts and descendants today. We find a total black hole mass density in good…
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