Implications of Increased Central Mass Surface Densities for the Quenching of Low-mass Galaxies
Abstract
We use the Cosmic Assembly Deep Near-infrared Extragalactic Legacy Survey (CANDELS) data to study the relationship between quenching and the stellar mass surface density within the central radius of 1 kpc () of low-mass galaxies (stellar mass ) at . Our sample is mass complete down to at . We compare the mean of star-forming galaxies (SFGs) and quenched galaxies (QGs) at the same redshift and . We find that low-mass QGs have higher than low-mass SFGs, similar to galaxies above . The difference of between QGs and SFGs increases slightly with at and decreases with at . The turnover mass is consistent with the mass where quenching mechanisms transition from internal to environmental quenching. At , we find that the of galaxies increases by about 0.25 dex in the green valley (i.e., the transitioning region from star forming to fully quenched), regardless of their . Using the observed specific star formation rate (sSFR) gradient in the literature as a constraint, we estimate that the quenching timescale (i.e., time spent in the transition) of low-mass galaxies is a few () Gyrs at . The mechanisms responsible for quenching need to gradually quench star formation in an outside-in way, i.e., preferentially ceasing star formation in outskirts of galaxies while maintaining their central star formation to increase . An interesting and intriguing result is the similarity of the growth of in the green valley between low-mass and massive galaxies, which suggests that the role of internal processes in quenching low-mass galaxies is a question worthy of further investigation.
Keywords
Cite
@article{arxiv.2105.12144,
title = {Implications of Increased Central Mass Surface Densities for the Quenching of Low-mass Galaxies},
author = {Yicheng Guo and Timothy Carleton and Eric F. Bell and Zhu Chen and Avishai Dekel and S. M. Faber and Mauro Giavalisco and Dale D. Kocevski and Anton M. Koekemoer and David C. Koo and Peter Kurczynski and Seong-Kook Lee and F. S. Liu and Casey Papovich and Pablo G. Pérez-González},
journal= {arXiv preprint arXiv:2105.12144},
year = {2021}
}
Comments
12 pages, 11 figures. Accepted by ApJ