English

EDGE: Dark matter core creation depends on the timing of star formation

Astrophysics of Galaxies 2024-12-13 v2 Cosmology and Nongalactic Astrophysics

Abstract

We study feedback-driven cold dark matter core creation in the EDGE suite of radiation-hydrodynamical dwarf galaxy simulations. Understanding this process is crucial when using observed dwarf galaxies to constrain the particle nature of dark matter. While previous studies have shown the stellar-mass to halo-mass ratio (M/M200)(M_{\star} / M_{200}) determines the extent of core creation, we find that in low-mass dwarfs there is a crucial additional effect, namely the timing of star formation relative to reionisation. Sustained post-reionisation star formation decreases central dark matter density through potential fluctuations; conversely, pre-reionisation star formation is too short-lived to have such an effect. In fact, large stellar masses accrued prior to reionisation are a strong indicator of early collapse, and therefore indicative of an increased central dark matter density. We parameterise this differentiated effect by considering M,post/M,preM_{\star,\mathrm{post}}/M_{\star,\mathrm{pre}}, where the numerator and denominator represent the amount of star formation after and before z6.5z\sim6.5, respectively. Our study covers the halo mass range 109<M200<1010M10^9 < M_{200} < 10^{10} M_\odot (stellar masses between 104<M<108M10^4 < M_{\star} < 10^8 M_\odot), spanning both ultra-faint and classical dwarfs. In this regime, M,post/M,preM_{\star,\mathrm{post}}/M_{\star,\mathrm{pre}} correlates almost perfectly with the central dark matter density at z=0z=0, even when including simulations with a substantially different variant of feedback and cooling. We provide fitting formulae to describe the newfound dependence.

Keywords

Cite

@article{arxiv.2407.14579,
  title  = {EDGE: Dark matter core creation depends on the timing of star formation},
  author = {Claudia Muni and Andrew Pontzen and Justin I. Read and Oscar Agertz and Martin P. Rey and Ethan Taylor and Stacy Y. Kim and Emily I. Gray},
  journal= {arXiv preprint arXiv:2407.14579},
  year   = {2024}
}

Comments

11 pages, 8 figures, 1 appendix. Accepted for publication in MNRAS