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On the Presence of a Universal Acceleration Scale in Elliptical Galaxies

Astrophysics of Galaxies 2020-11-18 v2 Cosmology and Nongalactic Astrophysics General Relativity and Quantum Cosmology High Energy Physics - Theory

Abstract

Dark matter phenomena in rotationally supported galaxies exhibit a characteristic acceleration scale of g1.2×1010g_\dagger \approx 1.2\times 10^{-10} m s2^{-2}. Whether this acceleration is a manifestation of a universal scale, or merely an emergent property with an intrinsic scatter, has been debated in the literature. Here we investigate whether a universal acceleration scale exists in dispersion-supported galaxies using two uniform sets of integral field spectroscopy (IFS) data from SDSS-IV MaNGA and ATLAS3D^{\rm 3D}. We apply the spherical Jeans equation to 15 MaNGA and 4 ATLAS3D^{\rm 3D} slow-rotator E0 (i.e., nearly spherical) galaxies. Velocity dispersion profiles for these galaxies are well determined with observational errors under control. Bayesian inference indicates that all 19 galaxies are consistent with a universal acceleration of g=1.50.6+0.9×1010g_\dagger=1.5_{-0.6}^{+0.9}\times 10^{-10} m s2^{-2}. Moreover, all 387 data points from the radial bins of the velocity dispersion profiles are consistent with a universal relation between the radial acceleration traced by dynamics and that predicted by the observed distribution of baryons. This universality remains if we include 12 additional non-E0 slow-rotator elliptical galaxies from ATLAS3D^{\rm 3D}. Finally, the universal acceleration from MaNGA and ATLAS3D^{\rm 3D} is consistent with that for rotationally supported galaxies, so our results support the view that dark matter phenomenology in galaxies involves a universal acceleration scale.

Keywords

Cite

@article{arxiv.2010.10779,
  title  = {On the Presence of a Universal Acceleration Scale in Elliptical Galaxies},
  author = {Kyu-Hyun Chae and Mariangela Bernardi and Helena Dominguez Sanchez and Ravi K. Sheth},
  journal= {arXiv preprint arXiv:2010.10779},
  year   = {2020}
}

Comments

Published in ApJ Letters