Satellite Quenching, Galaxy Inner Density and the Halo Environment
arXiv:1607.06091 · doi:10.1093/mnras/stw2403
Abstract
Using the Sloan Digital Sky Survey, we adopt the sSFR- diagram as a diagnostic tool to understand quenching in different environments. sSFR is the specific star formation rate, and is the stellar surface density in the inner kpc. Although both the host halo mass and group-centric distance affect the satellite population, we find that these can be characterised by a single number, the quenched fraction, such that key features of the sSFR- diagram vary smoothly with this proxy for the "environment". Particularly, the sSFR of star-forming galaxies decreases smoothly with this quenched fraction, the sSFR of satellites being 0.1 dex lower than in the field. Furthermore, of the transition galaxies (i.e., the "green valley" or GV) decreases smoothly with the environment, by as much as 0.2 dex for from the field, and decreasing for satellites in larger halos and at smaller radial distances within same-mass halos. We interpret this shift as indicating the relative importance of today's field quenching track vs. the cluster quenching track. These environmental effects in the sSFR- diagram are most significant in our lowest mass range (). One feature that is shared between all environments is that at a given quenched galaxies have about 0.2-0.3 dex higher than the star-forming population. These results indicate that either increases (subsequent to satellite quenching), or for individual galaxies remains unchanged, but the original or the time of quenching is significantly different from those now in the GV.
14 pages + Appendix, 12 figures, MNRAS accepted
References in corpus (28)
- The 2.5 m Telescope of the Sloan Digital Sky Survey
- Mass and environment as drivers of galaxy evolution in SDSS and zCOSMOS and the origin of the Schechter function
- K-corrections and filter transformations in the ultraviolet, optical, and near infrared
- Formation of Massive Galaxies at High Redshift: Cold Streams, Clumpy Disks and Compact Spheroids
- Galaxy Groups in the SDSS DR4: I. The Catalogue and Basic Properties
- Galaxy Zoo: the dependence of morphology and colour on environment
- Compaction and Quenching of High-z Galaxies in Cosmological Simulations: Blue and Red Nuggets
- Rapid formation of exponential disks and bulges at high redshift from the dynamical evolution of clump cluster and chain galaxies
- Ram pressure stripping the hot gaseous halos of galaxies in groups and clusters
- Bimodal gas accretion in the Horizon-MareNostrum galaxy formation simulation
- Four phases of angular-momentum buildup in high-z galaxies: from cosmic-web streams through an extended ring to disc and bulge
- Evidence for Mature Bulges and an Inside-out Quenching Phase 3 Billion Years After the Big Bang
- The DEEP2 Galaxy Redshift Survey: The Role of Galaxy Environment in the Cosmic Star-Formation History
- Bulge mass is king: The dominant role of the bulge in determining the fraction of passive galaxies in the Sloan Digital Sky Survey
- The Galaxy Content of SDSS Clusters and Groups
- The Majority of Compact Massive Galaxies at z~2 are Disk Dominated
- Dependence of Galaxy Quenching on Halo Mass and Distance from its Centre
- A Halo Model of Galaxy Colors and Clustering in the SDSS
- Two Conditions for Galaxy Quenching: Compact Centres and Massive Haloes
- The impact of galactic properties and environment on the quenching of central and satellite galaxies: A comparison between SDSS, Illustris and L-Galaxies
- Hot gas in massive halos drives both mass quenching and environment quenching
- From Starburst to Quiescence: Testing AGN feedback in Rapidly Quenching Post-Starburst Galaxies
- Quenching of Star Formation in SDSS Groups: Centrals, Satellites, and Galactic Conformity
- Galaxy bulges and their black holes: a requirement for the quenching of star formation
- Hiding in plain sight: An abundance of compact massive spheroids in the local Universe
- The Bulge-Disk Decomposed Evolution of Massive Galaxies at 1<z<3 in CANDELS
- Old and young bulges in late-type disk galaxies
- Morphologies and Color Gradients of Luminous Evolved Galaxies at z~1.5
Cited by in corpus (27)
- Fast, Slow, Early, Late: Quenching Massive Galaxies at z~0.8
- Effect of local environment and stellar mass on galaxy quenching and morphology at
- Are galactic star formation and quenching governed by local, global or environmental phenomena?
- Galaxy evolution across environments as probed by the ages, stellar metallicities and [alpha/Fe] of central and satellite galaxies
- What shapes a galaxy? - Unraveling the role of mass, environment and star formation in forming galactic structure
- Wet Compaction to a Blue Nugget: a Critical Phase in Galaxy Evolution
- Coincidence between morphology and star-formation activity through cosmic time: the impact of the bulge growth
- The SAMI Galaxy Survey: Satellite galaxies undergo little structural change during their quenching phase
- Interacting galaxies in the IllustrisTNG simulations -- III: (the rarity of) quenching in post-merger galaxies
- CANDELS Sheds Light on the Environmental Quenching of Low-mass Galaxies
- On the evolution of the central density of quiescent galaxies
- Gravitational Potential and Surface Density Drive Stellar Populations -- II. Star-Forming Galaxies
- The SAMI galaxy survey: galaxy size can explain the offset between star-forming and passive galaxies in the mass-metallicity relationship
- From Blue Cloud to Red Sequence: Evidence of Morphological Transition Prior to Star Formation Quenching
- Ram pressure stripping of HI-rich galaxies infalling into massive clusters
- Synergies between low- and intermediate-redshift galaxy populations revealed with unsupervised machine learning
- The miniJPAS survey: The galaxy populations in the most massive cluster in miniJPAS, mJPC2470-1771
- Exploring Galaxy Evolution Time-Scales in Clusters: Insights from the Projected Phase Space
- The Structural Evolution of Isolated Galaxies at Low Redshift in the IllustrisTNG Simulation
- The Carnegie-Irvine Galaxy Survey. X. Bulges in Stellar Mass-based Scaling Relations
- Implications of Increased Central Mass Surface Densities for the Quenching of Low-mass Galaxies
- The physical connection between central stellar surface density and stellar spin in SAMI and MaNGA nearby galaxies
- The age gradients of galaxies in EAGLE: outside-in quenching as the origin of young bulges in cluster galaxies
- BANG-MaNGA: A census of kinematic discs and bulges across mass and star formation in the local Universe
- Critical Stellar Central Densities Drive Galaxy Quenching in the Nearby Universe
- Cluster environment quenches the star formation of low-mass satellite galaxies from the inside-out
- The Nun Path: The Evolution and Quenching of Satellite Galaxies