Towards a deeper understanding of the physics driving galaxy quenching -- inferring trends in the gas content via extinction
arXiv:1911.06693 · doi:10.1093/mnrasl/slz172
Abstract
In order to investigate the importance of different proposed quenching mechanisms, we use an indirect method to estimate gas masses for ~62,000 SDSS DR7 galaxies. We infer gas surface densities from dust column densities as traced by extinction within the fibre, applying a metallicity correction to account for varying dust-to-gas ratios. We find that both gas fraction and star formation efficiency (SFE) decrease moving away from the star forming main sequence (MS) towards quiescence for all galaxy masses. We further show that both quantities correlate similarly strongly with the departure from the MS, implying the need for any physical model of quenching to invoke a change in gas fraction and SFE. Our results call for a better understanding of the physical processes driving the decrease in star formation efficiency, which has received relatively little attention in the theory of quenching until now.
7 pages, 4 figures, Accepted for publication in MNRAS Letters. In order to ensure reproducibility, all analysis is available at https://hub.docker.com/u/jpiotrowska
References in corpus (17)
- Mass and environment as drivers of galaxy evolution in SDSS and zCOSMOS and the origin of the Schechter function
- Cold streams in early massive hot haloes as the main mode of galaxy formation
- UV Star Formation Rates in the Local Universe
- Strangulation as the primary mechanism for shutting down star formation in galaxies
- xCOLD GASS: the complete IRAM-30m legacy survey of molecular gas for galaxy evolution studies
- The Importance of Satellite Quenching for the Build-Up of the Red Sequence of Present Day Galaxies
- An Objective Definition for the Main Sequence of Star-Forming Galaxies
- Bulge mass is king: The dominant role of the bulge in determining the fraction of passive galaxies in the Sloan Digital Sky Survey
- Dependence of Galaxy Quenching on Halo Mass and Distance from its Centre
- The impact of galactic properties and environment on the quenching of central and satellite galaxies: A comparison between SDSS, Illustris and L-Galaxies
- SDSS-IV MaNGA: What Shapes The Distribution Of Metals In Galaxies? Exploring The Roles Of The Local Gas Fraction And Escape Velocity
- What shapes a galaxy? - Unraveling the role of mass, environment and star formation in forming galactic structure
- The Millennium Galaxy Catalogue: Exploring the Color-Concentration Bimodality via Bulge-Disc Decomposition
- Metallicity calibrations for diffuse ionised gas and low ionisation emission regions
- The final data release of ALLSMOG: a survey of CO in typical local low-M* star-forming galaxies
- Diversity of Galaxy Dust Attenuation Curves Drives the Scatter in the IRX-beta Relation
- A new empirical method to estimate the molecular gas mass in galaxies
Cited by in corpus (31)
- The cold interstellar medium of galaxies in the Local Universe
- Are galactic star formation and quenching governed by local, global or environmental phenomena?
- Spatially resolved star formation and fuelling in galaxy interactions
- The ALMaQUEST Survey: III. Scatter in the resolved star forming main sequence is primarily due to variations in star formation efficiency
- The ALMaQUEST Survey: V. The non-universality of kpc-scale star formation relations and the factors that drive them
- The quenching of galaxies, bulges, and disks since cosmic noon: A machine learning approach for identifying causality in astronomical data
- The ALMaQUEST Survey IX: The nature of the resolved star forming main sequence
- The metallicity's fundamental dependence on both local and global galactic quantities
- What Drives Galaxy Quenching? Resolving Molecular Gas and Star Formation in the Green Valley
- Galaxy pairs in the Sloan Digital Sky Survey -- XIV. Galaxy mergers do not lie on the Fundamental Metallicity Relation
- The Molecular-Gas Main Sequence and Schmidt-Kennicutt relation are fundamental, the Star-Forming Main Sequence is a (useful) byproduct
- The Close AGN Reference Survey (CARS): No obvious signature of AGN feedback on star formation, but subtle trends
- What drives galaxy quenching? A deep connection between galaxy kinematics and quenching in the local Universe
- The ALMaQUEST Survey: VI. The molecular gas main sequence of `retired' regions in galaxies
- JADES: Balmer Decrement Measurements at redshifts 4 < z < 7
- ALMaQUEST -- VII: Star Formation Scaling Relations of Green Valley Galaxies
- Stellar mass, not dynamical mass nor gravitational potential, drives the mass-metallicity relationship
- The Elephant in the Bathtub: when the physics of star formation regulate the baryon cycle of galaxies
- Mass and Environment as Drivers of Galaxy Evolution. IV. On the Quenching of Massive Central Disk Galaxies in The Local Universe
- Unravelling the Dust Attenuation Scaling Relations and their Evolution
- Cold gas mass measurements for the era of large optical spectroscopic surveys
- The relationship between cluster environment and molecular gas content of star-forming galaxies in the EAGLE simulation
- The EDGE-CALIFA survey: Star formation relationships for galaxies at different stages of their evolution
- The EDGE-CALIFA survey: The effect of active galactic nucleus feedback on the integrated properties of galaxies at different stages of their evolution
- Both Stellar Mass and Gravitational Potential Shape the Gas-Phase Metallicity
- Unveiling the Main Sequence to Starburst Transition Region with a Sample of Intermediate Redshift Luminous Infrared Galaxies
- The ALMaQUEST Survey XVII: Unveiling Multiple Quenching Pathways in Green Valley Galaxies via Molecular Gas and Quenching Timescale Analyses
- Relating spatially resolved optical attenuation, dust and gas in nearby galaxies
- On the quenching of star formation in observed and simulated central galaxies: Evidence for the role of integrated AGN feedback
- Now you see it, now you don't: Star formation truncation precedes the loss of molecular gas by ~100 Myr in massive post-starburst galaxies at z~0.6
- The extension of the Fundamental Metallicity Relation beyond the BPT star-forming sequence: evidence for both gas accretion and starvation