The role of environment on the evolution of disc galaxies density profiles New insights from simulations and comparison to Euclid data
arXiv:2506.18413 · doi:10.1051/0004-6361/202554840
Abstract
Galactic discs are known to have exponential radial profiles in luminosity and stellar surface density in their bright inner regions. Nonetheless, their faint outer regions often display a break, with either a down-bending or an up-bending profile. Recent Euclid Early Release Observations show that down-bending breaks are scarce in the Perseus cluster, as already suspected in Virgo. We use hydrodynamic simulations of disc galaxies interacting with a Perseus-like cluster. We show that Type II profiles (down-bending) can be rapidly eroded by the cluster tidal field on a 1 Gyr timescale, while Type III (up-bending) and Type I (no break) profiles remain largely unaffected. Type II profiles are eroded through dynamical processes, including tidal stirring of stars by the cluster potential and triggering of star formation in the outer disc. Our simulations show that observations of disc breaks across environments and cosmic epochs are consistent with a coherent evolutionary picture. At high redshift, JWST reveals early break structures in isolated environments. At low redshift, field disc galaxies retain these breaks, while dense clusters, as observed by Euclid in Perseus, show significant alterations. Our findings support a scenario in which down-bending profiles result from internal processes during early formation phases and are later modified by environmental effects in clusters. This interpretation does not require additional mechanisms such as ram-pressure stripping or star formation threshold variations to explain the observed evolution of down-bending breaks.
12 pages, 7 figures, acceptance 12/06/2025
References in corpus (17)
- The effect of galaxy mass ratio on merger--driven starbursts
- Riding the Spiral Waves: Implications of Stellar Migration for the Properties of Galactic Disks
- Star formation efficiency in galaxy interactions and mergers: a statistical study
- Rapid formation of exponential disks and bulges at high redshift from the dynamical evolution of clump cluster and chain galaxies
- The structure of galactic disks: Studying late-type spiral galaxies using SDSS
- Starbursts triggered by inter-galactic tides and interstellar compressive turbulence
- Antitruncated Stellar Disks via Minor Mergers
- Modelling CO emission from hydrodynamic simulations of nearby spirals, starbursting mergers, and high-redshift galaxies
- Formation of S0 galaxies through mergers. V. Antitruncated stellar discs resulting from major mergers
- Star formation laws and thresholds from ISM structure and turbulence
- Euclid: Early Release Observations -- Programme overview and pipeline for compact- and diffuse-emission photometry
- Influence of galaxy stellar mass and observed wavelength on disc breaks in SG, NIRS0S, and SDSS data
- The Role of Stellar Radial Motions in Shaping Galaxy Surface Brightness Profiles
- Euclid: Early Release Observations -- Overview of the Perseus cluster and analysis of its luminosity and stellar mass functions
- The galaxy population within the virial radius of the Perseus cluster
- JWST reveals a high fraction of disk breaks at
- Euclid: Early Release Observations -- The surface brightness and colour profiles of the far outskirts of galaxies in the Perseus cluster