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arXiv · 2609.05618

Halo mass, star formation, and morphology in galaxies: A morphology-dependent connection between halo environment and star formation activity

Abstract

Understanding the mechanisms responsible for quenching star formation in galaxies requires disentangling the roles of internal structure and large-scale environment. We investigate how galaxy morphology and specific star formation rate (sSFR) relate to the typical masses of host dark-matter halos (DMHs), and whether the halo--star formation connection depends on morphology. We analyse non-active galaxies in the VIPERS and Stripe 82 fields at $0.5 \leq z \leq 1.2$, combining DESI-based Sérsic classifications with stellar masses and SFRs from spectral energy distribution fitting. Galaxies are separated into disc- and bulge-dominated systems and divided into quantile-based sSFR bins designed to minimise stellar-mass differences between morphologies. Each bin is characterised by its median $Δ{\rm MS}=\log {\rm SFR}-\log {\rm SFR}_{\rm MS}$, and characteristic DMH masses are inferred from projected galaxy cross-correlations. The halo-mass relation with star formation activity depends strongly on morphology: disc-dominated galaxies show little variation in halo mass across the probed $Δ{\rm MS}$ range, whereas bulge-dominated galaxies occupy lower-mass halos at high $Δ{\rm MS}$ and higher, mutually consistent halo masses toward lower $Δ{\rm MS}$. These trends are unlikely to be driven mainly by stellar-mass differences. Typical halo mass alone therefore does not map cleanly onto quiescence; instead, the connection between halo environment and star formation activity is stronger in bulge-dominated than in disc-dominated galaxies.

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G. Mountrichas, F. Shankar, F. J. Carrera, A. Georgakakis. 2026-09-04. Halo mass, star formation, and morphology in galaxies: A morphology-dependent connection between halo environment and star formation activity. https://arxiv.org/abs/2609.05618

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