Gravitational potential drives the concentration dependence of the stellar mass-halo mass relation
arXiv:2511.20165 · doi:10.1093/mnras/stag110
Abstract
We investigate the origin of the scatter in the stellar mass-halo mass (SMHM) relation using the \colibre cosmological hydrodynamical simulations. At fixed halo mass, we find a clear positive correlation between stellar mass and halo concentration, particularly in low-mass haloes between and , where all halo properties are computed from the corresponding dark-matter-only simulation. Two scenarios have been proposed to explain this trend: the earlier formation of higher-concentration haloes allows more time for star formation, or the deeper gravitational potential wells of higher-concentration haloes enhance baryon retention. To distinguish between them, we examine correlations between halo concentration, stellar mass, stellar age, and stellar metallicity. While, at fixed halo mass, halo concentration correlates with stellar age, stellar age itself shows only a weak correlation with stellar mass, indicating that early formation alone cannot account for the concentration-dependence in the scatter of the SMHM relation. In contrast, both stellar metallicity and halo concentration exhibit correlations with stellar mass. The connection between halo concentration and stellar metallicity persists even when simultaneously controlling for both halo mass and stellar mass. These results support the scenario in which the deeper gravitational potentials in higher-concentration haloes suppress feedback-driven outflows, thereby enhancing both baryon and metal retention.
9 pages, 3 + 1 figures, published on MNRAS
References in corpus (22)
- The EAGLE project: Simulating the evolution and assembly of galaxies and their environments
- Direct cosmological simulations of the growth of black holes and galaxies
- Baryon effects on the internal structure of LCDM halos in the EAGLE simulations
- The dark nemesis of galaxy formation: why hot haloes trigger black hole growth and bring star formation to an end
- The origin of scatter in the stellar mass - halo mass relation of central galaxies in the EAGLE simulation
- SWIFT: A modern highly-parallel gravity and smoothed particle hydrodynamics solver for astrophysical and cosmological applications
- Satellite Kinematics I: A New Method to Constrain the Halo Mass-Luminosity Relation of Central Galaxies
- The impact of gas disc flaring on rotation curve decomposition and revisiting baryonic and dark-matter relations for nearby galaxies
- A thermal-kinetic subgrid model for supernova feedback in simulations of galaxy formation
- The COLIBRE project: cosmological hydrodynamical simulations of galaxy formation and evolution
- The dark side of galaxy stellar populations I: The stellar-to-halo mass relation and the velocity dispersion - halo mass relation
- SOAP: A Python Package for Calculating the Properties of Galaxies and Halos Formed in Cosmological Simulations
- Environmental dependence of the mass-metallicity relation in cosmological hydrodynamical simulations
- Baryonic properties of nearby galaxies across the stellar-to-total dynamical mass relation
- Revisiting the fundamental metallicity relation with observation and simulation
- Late-formed halos prefer to host quiescent central galaxies. I. Observational results
- From Halos to Galaxies. VI. Improved halo mass estimation for SDSS groups and measurement of the halo mass function
- An efficient and robust method to estimate halo concentration
- Testing galaxy formation models with the stellar mass-halo mass relations for star-forming and quiescent galaxies
- The evolution of the galaxy stellar mass function and star formation rates in the COLIBRE simulations from redshift 17 to 0
- SWIFTGalaxy: a Python package to work with particle groups from SWIFT simulations
- A hybrid active galactic nucleus feedback model with spinning black holes, winds and jets