z~2: An Epoch of Disk Assembly
Abstract
We explore the evolution of the internal gas kinematics of star-forming galaxies from the peak of cosmic star-formation at to today. Measurements of galaxy rotation velocity , which quantify ordered motions, and gas velocity dispersion , which quantify disordered motions, are adopted from the DEEP2 and SIGMA surveys. This sample covers a continuous baseline in redshift from to , spanning 10 Gyrs. At low redshift, nearly all sufficiently massive star-forming galaxies are rotationally supported (). By , the percentage of galaxies with rotational support has declined to 50 at low stellar mass () and 70 at high stellar mass (). For , the percentage drops below 35 for all masses. From to now, galaxies exhibit remarkably smooth kinematic evolution on average. All galaxies tend towards rotational support with time, and it is reached earlier in higher mass systems. This is mostly due to an average decline in by a factor of 3 since a redshift of 2, which is independent of mass. Over the same time period, increases by a factor of 1.5 for low mass systems, but does not evolve for high mass systems. These trends in and with time are at a fixed stellar mass and should not be interpreted as evolutionary tracks for galaxy populations. When galaxy populations are linked in time with abundance matching, not only does decline with time as before, but strongly increases with time for all galaxy masses. This enhances the evolution in . These results indicate that is a period of disk assembly, during which the strong rotational support present in today's massive disk galaxies is only just beginning to emerge.
Cite
@article{arxiv.1705.03474,
title = {z~2: An Epoch of Disk Assembly},
author = {Raymond C. Simons and Susan A. Kassin and Benjamin J. Weiner and Sandra M. Faber and Jonathan R. Trump and Timothy M. Heckman and David C. Koo and Camilla Pacifici and Joel R. Primack and Gregory F. Snyder and Alexander de la Vega},
journal= {arXiv preprint arXiv:1705.03474},
year = {2017}
}
Comments
12 pages, 8 figures, submitted to ApJ