The Circular Velocity Function of Group Galaxies
Abstract
A robust prediction of cosmology is the halo circular velocity function (CVF), a dynamical cousin of the halo mass function. The correspondence between theoretical and observed CVFs is uncertain, however: cluster galaxies are reported to exhibit a power-law CVF consistent with -body simulations, but that of the field is distinctly Schechter-like, flattened relative to expectations at circular velocities . Groups offer a powerful probe of the role environment plays in this discrepancy as they bridge the field and clusters. Here, we construct the CVF for a large, mass- and multiplicity-complete sample of group galaxies from the Sloan Digital Sky Survey. Using independent photometric estimators, we find no transition from a field- to -shaped CVF above as a function of group halo mass. All groups with (Local Group analogs to rich clusters) display similar Schechter-like CVFs marginally suppressed at low- compared to that of the field. Conversely, some agreement with -body results emerges for samples saturated with late-type galaxies, with isolated late-types displaying a CVF similar in shape to predictions. We conclude that the flattening of the low- slope in groups is due to their depressed late-type fractions -- environment affecting the CVF only to the extent that it correlates with this quantity -- and that previous cluster analyses may suffer from interloper contamination. These results serve as useful benchmarks for cosmological simulations of galaxy formation.
Cite
@article{arxiv.1307.6555,
title = {The Circular Velocity Function of Group Galaxies},
author = {Louis E. Abramson and Rik J. Williams and Andrew J. Benson and Juna A. Kollmeier and John S. Mulchaey},
journal= {arXiv preprint arXiv:1307.6555},
year = {2015}
}
Comments
16 pages, 16 figures; Accepted to ApJ August 2014. ArXiv version updated to reflect changes made during refereeing; results unchanged