THE OPTICAL–UV EMISSIVITY OF QUASARS: DEPENDENCE ON BLACK HOLE MASS AND RADIO LOUDNESS

The Astrophysical Journal Letters American Astronomical Society 818:1 (2016) l1

Authors:

Francesco Shankar, Giorgio Calderone, Christian Knigge, James Matthews, Rachel Buckland, Krzysztof Hryniewicz, Gregory Sivakoff, Xinyu Dai, Kayleigh Richardson, Jack Riley, James Gray, Fabio La Franca, Diego Altamirano, Judith Croston, Poshak Gandhi, Sebastian Hönig, Ian McHardy, Matthew Middleton

Dynamical formation signatures of black hole binaries in the first detected mergers by LIGO

(2016)

Authors:

Ryan M O'Leary, Yohai Meiron, Bence Kocsis

Star Formation in Luminous Quasars at 2

(2016)

Authors:

Kathryn Harris, Duncan Farrah, Bernhard Schulz, Evanthia Hatziminaoglou, Marco Viero, Nick Anderson, Matthieu Bethermin, Scott Chapman, David L Clements, Asantha Cooray, Andreas Efstathiou, Anne Feltre, Peter Hurley, Eduardo Ibar, Mark Lacy, Sebastian Oliver, Mathew J Page, Ismael Perez-Fournon, Sara M Petty, Lura K Pitchford, Dimitra Rigopoulou, Douglas Scott, Myrto Symeonidis, Joaquin Vieira, Lingyu Wang

The cosmic evolution of massive black holes in the Horizon-AGN simulation

(2016)

Authors:

Marta Volonteri, Yohan Dubois, Christophe Pichon, Julien Devriendt

Galaxy and mass assembly (GAMA): the 325 MHz radio luminosity function of AGN and star-forming galaxies

Monthly Notices of the Royal Astronomical Society Oxford University Press 457:1 (2016) 730-744

Authors:

M Prescott, T Mauch, Matthew Jarvis, K McAlpine, DJB Smith, S Fine, R Johnston, MJ Hardcastle, IK Baldry, S Brough, MJI Brown, MN Bremer, SP Driver, AM Hopkins, LS Kelvin, J Loveday, P Norberg, D Obreschkow, EM Sadler

Abstract:

Measurement of the evolution of both active galactic nuclei (AGN) and star-formation in galaxies underpins our understanding of galaxy evolution over cosmic time. Radio continuum observations can provide key information on these two processes, in particular via the mechanical feedback produced by radio jets in AGN, and via an unbiased dust-independent measurement of star formation rates. In this paper, we determine radio luminosity functions at 325 MHz for a sample of AGN and star-forming galaxies by matching a 138 deg2 radio survey conducted with the Giant Metrewave Radio Telescope, with optical imaging and redshifts from the Galaxy And Mass Assembly survey. We find that the radio luminosity function at 325 MHz for star-forming galaxies closely follows that measured at 1.4 GHz. By fitting the AGN radio luminosity function out to z = 0.5 as a double power law, and parametrizing the evolution as Φ ∝ (1 + z)k, we find evolution parameters of k = 0.92 ± 0.95 assuming pure density evolution and k = 2.13 ± 1.96 assuming pure luminosity evolution. We find that the Low Excitation Radio Galaxies are the dominant population in space density at lower luminosities. Comparing our 325 MHz observations with radio continuum imaging at 1.4 GHz, we determine separate radio luminosity functions for steep- and flat-spectrum AGN, and show that the beamed population of flat-spectrum sources in our sample can be shifted in number density and luminosity to coincide with the unbeamed population of steep-spectrum sources, as is expected in the orientation-based unification of AGN.