English

Galaxy discs regulate the growth of supermassive black holes

Astrophysics of Galaxies 2026-04-09 v1

Abstract

We examine the relationship between the mass of present-day central supermassive black holes (SMBHs, MBHM_{\rm BH}), and the stellar mass (MM_{\star}) and halo mass (M200M_{200}) of their host galaxies in the EAGLE simulation, and find that scatter about these relations correlates with both halo structure and galaxy morphology. EAGLE reproduces the observed MBHM_{\rm BH}-MM_{\star} relation, including (qualitatively) its dependence on morphology: at fixed MM_{\star}, disc-dominated galaxies host less massive SMBHs than ellipticals. We show that MBHM_{\rm BH} correlates with M200M_{200}, as expected if SMBHs are regulated by processes acting on the scale of the host dark matter halo, but exhibits a tighter correlation with the halo binding energy (EbindE_{\rm bind}), signalling that this quantity, which encodes information about both halo mass and halo structure, is more fundamental to MBHM_{\rm BH}. As with MBHM_{\rm BH}-MM_{\star}, scatter about the MBHM_{\rm BH}-EbindE_{\rm bind} relation is strongly correlated with morphology. Gas in the central few parsecs of galaxies with present-day discs retains strong rotational support as the galaxy grows, inhibiting inward transport and precluding periods of rapid SMBH growth by gas accretion. In galaxies destined to be present-day ellipticals, however, this rotational support is disrupted, enabling gas to be funnelled onto the central SMBH, triggering rapid growth. Evolution of the mass fraction of stars formed ex-situ indicates that this disruption is caused by galaxy-galaxy interactions and mergers. Our findings corroborate the conclusion of recent studies, based on controlled simulations of an ~LL^{\star} galaxy, that prolonged secular galaxy evolution inhibits central SMBH growth.

Keywords

Cite

@article{arxiv.2604.06977,
  title  = {Galaxy discs regulate the growth of supermassive black holes},
  author = {Ryan J. Roberts and Jonathan J. Davies and Robert A. Crain},
  journal= {arXiv preprint arXiv:2604.06977},
  year   = {2026}
}

Comments

8 pages, 4 figures. Accepted for publication in MNRAS