2019/06/06 by Bryan A. Terrazas, Eric F. Bell, Annalisa Pillepich +8 · 2 citations
Physics and Astronomy · #astro-ph.GA
paper · pdf · doi:10.1093/mnras/staa374
20 pages, submitted to MNRAS
arxiv created 2019/06/06 · arxiv updated 2020/02/26
Supermassive black hole feedback is thought to be responsible for the lack of star formation, or quiescence, in a significant fraction of galaxies. We explore how observable correlations between the specific star formation rate (sSFR), stellar mass (M_\rmstar), and black hole mass (M_\rmBH) are sensitive to the physics of black hole feedback in a galaxy formation model. We use the IllustrisTNG simulation suite, specifically the TNG100 simulation and ten model variations that alter the parameters of the black hole model. Focusing on central galaxies at z = 0 with M_\rmstar > 1010 M\odot, we find that the sSFR of galaxies in IllustrisTNG decreases once the energy from black hole kinetic winds at low accretion rates becomes larger than the gravitational binding energy of gas within the galaxy stellar radius. This occurs at a particular M_\rmBH threshold above which galaxies are found to sharply transition from being mostly star-forming to mostly quiescent. As a result of this behavior, the fraction of quiescent galaxies as a function of M_\rmstar is sensitive to both the normalization of the M_\rmBH-M_\rmstar relation and the M_\rmBH threshold for quiescence in IllustrisTNG. Finally, we compare these model results to observations of 91 central galaxies with dynamical M_\rmBH measurements with the caveat that this sample is not representative of the whole galaxy population. While IllustrisTNG reproduces the observed trend that quiescent galaxies host more massive black holes, the observations exhibit a broader scatter in M_\rmBH at a given M_\rmstar and show a smoother decline in sSFR with M_\rmBH.