English

The stellar mass - physical effective radius relation for dwarf galaxies in low-density environments

Astrophysics of Galaxies 2021-07-07 v1

Abstract

The scaling relation between stellar mass (MM_{*}) and physical effective radius (rer_{e}) has been well-studied using wide spectroscopic surveys. However, these surveys suffer from severe surface brightness incompleteness in the dwarf galaxy regime, where the relation is poorly constrained. In this study, I use a Bayesian empirical model to constrain the power-law exponent β\beta of the MM_{*}-rer_{e} relation for late-type dwarfs (10710^{7}\leqMM_{*}/MM_{\odot}\leq10910^{9}) using a sample of 188 isolated low surface brightness (LSB) galaxies, accounting for observational incompleteness. Surprisingly, the best-fitting model (β\beta=0.40±\pm0.07) indicates that the relation is significantly steeper than would be expected from extrapolating canonical models into the dwarf galaxy regime. Nevertheless, the best fitting MM_{*}-rer_{e} relation closely follows the distribution of known dwarf galaxies. These results indicate that extrapolated canonical models over-predict the number of large dwarf (i.e. LSB) galaxies, including ultra-diffuse galaxies (UDGs), explaining why they are over-produced by some semi-analytic models. The best-fitting model also constrains the power-law exponent of the physical size distribution of UDGs to n[dex1]n\mathrm{[dex^{-1}]}\propto re3.54±0.33~r_{e}^{3.54\pm0.33}, consistent to within 1σ\sigma of the corresponding value in cluster environments and with the theoretical scenario in which UDGs occupy the high-spin tail of the normal dwarf galaxy population.

Keywords

Cite

@article{arxiv.2106.14924,
  title  = {The stellar mass - physical effective radius relation for dwarf galaxies in low-density environments},
  author = {Daniel J. Prole},
  journal= {arXiv preprint arXiv:2106.14924},
  year   = {2021}
}

Comments

Accepted in MNRAS letters

R2 v1 2026-06-24T03:41:18.528Z