English

Quantifying scatter in galaxy formation at the lowest masses

Astrophysics of Galaxies 2021-12-15 v1

Abstract

We predict the stellar mass -- halo mass (SMHM) relationship for dwarf galaxies, using simulated galaxies with peak halo masses of Mpeak=1011_{\rm peak} = 10^{11} M_{\odot} down into the ultra-faint dwarf range to Mpeak=_{\rm peak} = 107^7 M_{\odot}. Our simulated dwarfs have stellar masses of Mstar=_{\rm star} = 790 M_{\odot} to 8.2×1088.2 \times 10^8 M_{\odot}, with corresponding VV-band magnitudes from 2-2 to 18.5-18.5. For Mpeak>1010_{\rm peak} > 10^{10} M_{\odot}, the simulated SMHM relationship agrees with literature determinations, including exhibiting a small scatter of 0.3 dex. However, the scatter in the SMHM relation increases for lower-mass halos. We first present results for well-resolved halos that contain a simulated stellar population, but recognize that whether a halo hosts a galaxy is inherently mass resolution dependent. We thus adopt a probabilistic model to populate "dark" halos below our resolution limit to predict an "intrinsic" slope and scatter for the SMHM relation. We fit linearly growing log-normal scatter in stellar mass, which grows to more than 1 dex at Mpeak_{\rm peak} == 108^8 M_{\odot}. At the faintest end of the SMHM relation probed by our simulations, a galaxy cannot be assigned a unique halo mass based solely on its luminosity. Instead, we provide a formula to stochastically populate low-mass halos following our results. Finally, we show that our growing log-normal scatter steepens the faint-end slope of the predicted stellar mass function.

Keywords

Cite

@article{arxiv.2101.05822,
  title  = {Quantifying scatter in galaxy formation at the lowest masses},
  author = {Ferah Munshi and Alyson Brooks and Elaad Applebaum and Charlotte Christensen and Jordan P. Sligh and T. Quinn},
  journal= {arXiv preprint arXiv:2101.05822},
  year   = {2021}
}

Comments

16 pages, 5 figures; submitted to ApJ. arXiv admin note: text overlap with arXiv:1705.06286

R2 v1 2026-06-23T22:10:53.479Z