English

Brightest Cluster Galaxy Offsets in Cold Dark Matter

Astrophysics of Galaxies 2024-08-09 v3 Cosmology and Nongalactic Astrophysics High Energy Physics - Phenomenology

Abstract

The distribution of offsets between the brightest cluster galaxies of galaxy clusters and the centroid of their dark matter distributions is a promising probe of the underlying dark matter physics. In particular, since this distribution is sensitive to the shape of the potential in galaxy cluster cores, it constitutes a test of dark matter self-interaction on the largest mass scales in the universe. We examine these offsets in three suites of modern cosmological simulations; IllustrisTNG, MillenniumTNG and BAHAMAS. For clusters above 1014M10^{14}\rm{M_\odot}, we examine the dependence of the offset distribution on gravitational softening length, the method used to identify centroids, redshift, mass, baryonic physics, and establish the stability of our results with respect to various nuisance parameter choices. We find that offsets are overwhelmingly measured to be smaller than the minimum converged length scale in each simulation, with a median offset of 1kpc\sim1\rm{kpc} in the highest resolution simulation considered, TNG300-1, which uses a gravitational softening length of 1.48kpc1.48\rm{kpc}. We also find that centroids identified via source extraction on smoothed dark matter and stellar particle data are consistent with the potential minimum, but that observationally relevant methods sensitive to cluster strong gravitational lensing scales, or those using gas as a tracer for the potential can overestimate offsets by factors of 10\sim10 and 30\sim30, respectively. This has the potential to reduce tensions with existing offset measurements which have served as evidence for a nonzero dark matter self-interaction cross section.

Keywords

Cite

@article{arxiv.2402.00928,
  title  = {Brightest Cluster Galaxy Offsets in Cold Dark Matter},
  author = {Cian Roche and Michael McDonald and Josh Borrow and Mark Vogelsberger and Xuejian Shen and Volker Springel and Lars Hernquist and Ruediger Pakmor and Sownak Bose and Rahul Kannan},
  journal= {arXiv preprint arXiv:2402.00928},
  year   = {2024}
}

Comments

16 pages, 6 figures; v3: OJA published

R2 v1 2026-06-28T14:35:06.209Z