Investigating the Dominant Environmental Quenching Process in UVCANDELS/COSMOS Groups
Abstract
We explore how the fraction of quenched galaxies changes in groups of galaxies with respect to the distance to the center of the group, redshift, and stellar mass to determine the dominant process of environmental quenching in groups. We use new UV data from the UVCANDELS project in addition to existing multiband photometry to derive new galaxy physical properties of the group galaxies from the zCOSMOS 20k Group Catalog. Limiting our analysis to a complete sample of log group galaxies we find that the probability of being quenched increases slowly with decreasing redshift, diverging from the stagnant field galaxy population. A corresponding analysis on how the probability of being quenched increases with time within groups suggests that the dominant environmental quenching process is characterized by slow (Gyr) timescales. We find a quenching time of approximately Gyrs, consistent with the slow processes of strangulation (Larson et al. 1980) and delayed-then-rapid quenching (Wetzel et al. 2013 arXiv:1206.3571v2 [astro-ph.CO]), although more data are needed to confirm this result.
Keywords
Cite
@article{arxiv.2205.12169,
title = {Investigating the Dominant Environmental Quenching Process in UVCANDELS/COSMOS Groups},
author = {Maxwell Kuschel and Claudia Scarlata and Vihang Mehta and Harry I. Teplitz and Marc Rafelski and Xin Wang and Ben Sunnquist and Laura Prichard and Norman Grogin and Rogier Windhorst and Michael Rutkowski and Anahita Alavi and Nima Chartab and Christopher J. Conselice and Y. Sophia Dai and Eric Gawiser and Mauro Giavalisco and Pablo Arrabal Haro and Nimish Hathi and Rolf Jansen and Zhiyuan Ji and Anton Koekemoer and Ray A. Lucas and Kameswara Mantha and Bahram Mobasher and Robert W. O'Connell and Brant Robertson and Zahra Sattari and L. Y. Aaron Yung and Romeel Dave and Duilia DeMello and Mark Dickinson and Henry Ferguson and Steven L. Finkelstein and Matt Hayes and Justin Howell and Sugata Kaviraj and John W. Mackenty and Brian Siana},
journal= {arXiv preprint arXiv:2205.12169},
year = {2023}
}