Comparing the Quenching Times of Faint M31 and Milky Way Satellite Galaxies

Weisz, Daniel R. and Martin, Nicolas F. and Dolphin, Andrew E. and Albers, Saundra M. and Collins, Michelle L. M. and Ferguson, Annette M. N. and Lewis, Geraint F. and Mackey, Dougal and McConnachie, Alan and Rich, R. Michael and Skillman, Evan D. (2019) Comparing the Quenching Times of Faint M31 and Milky Way Satellite Galaxies. The Astrophysical Journal, 885 (1). L8. ISSN 2041-8213

[thumbnail of Weisz_2019_ApJL_885_L8.pdf] Text
Weisz_2019_ApJL_885_L8.pdf - Published Version

Download (870kB)

Abstract

We present the star formation histories (SFHs) of 20 faint M31 satellites (−12 ≲ MV ≲ −6) that were measured by modeling sub-horizontal branch depth color–magnitude diagrams constructed from Hubble Space Telescope (HST) imaging. Reinforcing previous results, we find that virtually all galaxies quenched between 3 and 9 Gyr ago, independent of luminosity, with a notable concentration 3–6 Gyr ago. This is in contrast to the Milky Way (MW) satellites, which are generally either faint with ancient quenching times or luminous with recent (<3 Gyr) quenching times. We suggest that systematic differences in the quenching times of M31 and MW satellites may be a reflection of the varying accretion histories of M31 and the MW. This result implies that the formation histories of low-mass satellites may not be broadly representative of low-mass galaxies in general. Among the M31 satellite population we identify two distinct groups based on their SFHs: one with exponentially declining SFHs (τ ∼ 2 Gyr) and one with rising SFHs with abrupt quenching. We speculate how these two groups could be related to scenarios for a recent major merger involving M31. The Cycle 27 HST Treasury survey of M31 satellites will provide well-constrained ancient SFHs to go along with the quenching times we measure here. The discovery and characterization of M31 satellites with MV ≳ −6 would help quantify the relative contributions of reionization and environment to quenching of the lowest-mass satellites.

Item Type: Article
Subjects: Opene Prints > Physics and Astronomy
Depositing User: Managing Editor
Date Deposited: 31 May 2023 05:06
Last Modified: 16 Jan 2024 04:56
URI: http://geographical.go2journals.com/id/eprint/2036

Actions (login required)

View Item
View Item