Gas flows in galactic nuclei: observational constraints on BH-galaxy coevolution
arXiv:1601.04349 · doi:10.1017/S1743921316007511
Abstract
Galaxy nuclei are a unique laboratory to study gas flows. High-resolution imaging of the gas flows in galactic nuclei are instrumental in the study of the fueling and the feedback of star formation and nuclear activity in nearby galaxies. Several fueling mechanisms can be now confronted in detail with observations done with state-of-the-art interferometers. Furthermore, the study of gas flows in galactic nuclei can probe the feedback of activity on the interstellar medium of galaxies. Feedback action from star formation and AGN activity is invoked to prevent galaxies from becoming overly massive, but also to explain scaling laws like black hole (BH)-bulge mass correlations and the bimodal color distribution of galaxies. This close relationship between galaxies and their central supermassive BH can be described as co-evolution. There is mounting observational evidence for the existence of gas outflows in different populations of starbursts and active galaxies, a manifestation of the feedback of activity. We summarize the main results recently obtained from the observation of galactic inflows and outflows in a variety of active galaxies with current millimeter interferometers like ALMA or the IRAM array.
8 pages, 5 figures, Proceedings of IAU symposium 315S, invited talk, Ed by P. Jablonka, P. André & F. van der Tak
References in corpus (7)
- Massive molecular outflows and negative feedback in ULIRGs observed by Herschel-PACS
- Molecular line emission in NGC1068 imaged with ALMA. I An AGN-driven outflow in the dense molecular gas
- A Close Look at Star Formation around Active Galactic Nuclei
- Suppression of Star Formation in NGC 1266
- A Luminous Infrared Merger with Two Bipolar Molecular Outflows: ALMA and SMA Observations of NGC 3256
- Mapping the average AGN accretion rate in the SFR-M* plane for Herschel selected galaxies at 0<z<2.5
- Growing black holes and galaxies: black hole accretion versus star formation rate