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The galaxy–halo size relation of low-mass galaxies in FIRE

Rohr, Eric; Feldmann, Robert; Bullock, James S; Çatmabacak, Onur; Boylan-Kolchin, Michael; Faucher-Giguère, Claude-André; Kereš, Dušan; Liang, Lichen; Moreno, Jorge; Wetzel, Andrew (2022). The galaxy–halo size relation of low-mass galaxies in FIRE. Monthly Notices of the Royal Astronomical Society, 510(3):3967-3985.

Abstract

Galaxy sizes correlate closely with the sizes of their parent dark matter haloes, suggesting a link between halo formation and galaxy growth. However, the precise nature of this relation and its scatter remains to be understood fully, especially for low-mass galaxies. We analyse the galaxy–halo size relation (GHSR) for low-mass (⁠M⋆∼107−9M⊙⁠) central galaxies over the past 12.5 billion years with the help of cosmological volume simulations (FIREbox) from the Feedback in Realistic Environments (FIRE) project. We find a nearly linear relationship between the half-stellar mass galaxy size R1/2 and the parent dark matter halo virial radius Rvir. This relation evolves only weakly since redshift z = 5: R1/2[kpc]=(0.053±0.002)(Rvir/35kpc)0.934±0.054⁠, with a nearly constant scatter ⟨σ⟩=0.084[dex]⁠. While this ratio is similar to what is expected from models where galaxy disc sizes are set by halo angular momentum, the low-mass galaxies in our sample are not angular momentum supported, with stellar rotational to circular velocity ratios vrot/vcirc ∼ 0.15. Introducing redshift as another parameter to the GHSR does not decrease the scatter. Furthermore, this scatter does not correlate with any of the halo properties we investigate – including spin and concentration – suggesting that baryonic processes and feedback physics are instead critical in setting the scatter in the GHSR. Given the relatively small scatter and the weak dependence of the GHSR on redshift and halo properties for these low-mass central galaxies, we propose using galaxy sizes as an independent method from stellar masses to infer halo masses.

Additional indexing

Item Type:Journal Article, refereed, original work
Communities & Collections:07 Faculty of Science > Department of Astrophysics
Dewey Decimal Classification:530 Physics
Scopus Subject Areas:Physical Sciences > Astronomy and Astrophysics
Physical Sciences > Space and Planetary Science
Uncontrolled Keywords:Space and Planetary Science, Astronomy and Astrophysics
Language:English
Date:13 January 2022
Deposited On:21 Nov 2022 10:09
Last Modified:25 Feb 2025 02:37
Publisher:Oxford University Press
ISSN:0035-8711
OA Status:Green
Free access at:Publisher DOI. An embargo period may apply.
Publisher DOI:https://doi.org/10.1093/mnras/stab3625
Project Information:
  • Funder: Barcelona Supercomputing Center
  • Grant ID:
  • Project Title:
  • Funder: State Secretariat for Education, Research and Innovation
  • Grant ID:
  • Project Title:
  • Funder: SNSF
  • Grant ID: PP00P2_157591
  • Project Title: Aiming for the Parsec Scale - Star Formation and Feedback Processes in High Redshift Galaxies
  • Funder: SNSF
  • Grant ID: PP00P2_194814
  • Project Title: Aiming for the Parsec Scale - The Rise of Massive Galaxies and their Supermassive Black holes
  • Funder: SNSF
  • Grant ID: 200021_188552
  • Project Title: The baryonic cycle in galaxies from Cosmic Dawn to Cosmic Noon
  • Funder: Research Corporation for Science Advancement
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  • Licence: Creative Commons: Attribution 4.0 International (CC BY 4.0)

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