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Investigating the Dominant Environmental Quenching Process in UVCANDELS/COSMOS Groups

Authors :
Bonnabelle Zabelle
Claudia Scarlata
Vihang Mehta
Harry I. Teplitz
Marc Rafelski
Xin Wang
Ben Sunnquist
Laura Prichard
Norman Grogin
Anton Koekemoer
Rogier Windhorst
Michael Rutkowski
Anahita Alavi
Nima Chartab
Christopher J. Conselice
Y. Sophia Dai
Eric Gawiser
Mauro Giavalisco
Pablo Arrabal Haro
Nimish Hathi
Rolf A. Jansen
Zhiyuan Ji
Ray A. Lucas
Kameswara Mantha
Bahram Mobasher
Robert W. O’Connell
Brant Robertson
Zahra Sattari
L. Y. Aaron Yung
Romeel Davé
Duilia DeMello
Mark Dickinson
Henry Ferguson
Steven L. Finkelstein
Matt Hayes
Justin Howell
Sugata Kaviraj
John W. Mackenty
Brian Siana
Source :
The Astrophysical Journal, Vol 947, Iss 1, p 17 (2023)
Publication Year :
2023
Publisher :
IOP Publishing, 2023.

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 0.2 < z < 0.8 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 20 k group catalog. Limiting our analysis to a complete sample of log ( M _* / M _⊙ ) > 10.56 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 ${4.91}_{-1.47}^{+0.91}$ Gyr, consistent with the slow processes of strangulation and delayed-then-rapid quenching although more data are needed to confirm this result.

Details

Language :
English
ISSN :
15384357
Volume :
947
Issue :
1
Database :
Directory of Open Access Journals
Journal :
The Astrophysical Journal
Publication Type :
Academic Journal
Accession number :
edsdoj.57e263d6986644a4a79fa4466e261b26
Document Type :
article
Full Text :
https://doi.org/10.3847/1538-4357/acacfd