Hooks & Bends in the radial acceleration relation: discriminatory tests for dark matter and MOND

Author:

Mercado Francisco J123ORCID,Bullock James S3ORCID,Moreno Jorge14ORCID,Boylan-Kolchin Michael5ORCID,Hopkins Philip F2ORCID,Wetzel Andrew6ORCID,Faucher-Giguère Claude-André7ORCID,Samuel Jenna5ORCID

Affiliation:

1. Department of Physics and Astronomy, Pomona College , Claremont, CA 91711 , USA

2. TAPIR , Mailcode 350-17, California Institute of Technology, Pasadena, CA 91125 , USA

3. Department of Physics and Astronomy, University of California, Irvine, CA 92697, USA

4. Center for Computational Astrophysics, Flatiron Institute , 162 Fifth Avenue, New York, NY 10010 , USA

5. Department of Astronomy, The University of Texas at Austin , 2515 Speedway Stop C1400, Austin, TX 78712 , USA

6. Department of Physics, University of California , Davis, CA 95616 , USA

7. Department of Physics and Astronomy and CIERA, Northwestern University , 2145 Sheridan Road, Evanston, IL 60208 , USA

Abstract

ABSTRACT The radial acceleration relation (RAR) connects the total gravitational acceleration of a galaxy at a given radius, atot(r), with that accounted for by baryons at the same radius, abar(r). The shape and tightness of the RAR for rotationally-supported galaxies have characteristics in line with MOdified Newtonian Dynamics (MOND) and can also arise within the cosmological constant + cold dark matter (ΛCDM) paradigm. We use zoom simulations of 20 galaxies with stellar masses of M⋆ ≃ 107–11 M⊙ to study the RAR in the FIRE-2 simulations. We highlight the existence of simulated galaxies with non-monotonic RAR tracks that ‘hook’ down from the average relation. These hooks are challenging to explain in Modified Inertia theories of MOND, but naturally arise in all of our ΛCDM-simulated galaxies that are dark-matter dominated at small radii and have feedback-induced cores in their dark matter haloes. We show, analytically and numerically, that downward hooks are expected in such cored haloes because they have non-monotonic acceleration profiles. We also extend the relation to accelerations below those traced by disc galaxy rotation curves. In this regime, our simulations exhibit ‘bends’ off of the MOND-inspired extrapolation of the RAR, which, at large radii, approach atot ≈ abar/fb, where fb is the cosmic baryon fraction. Future efforts to search for these hooks and bends in real galaxies will provide interesting tests for MOND and ΛCDM.

Funder

National Science Foundation

National Aeronautics and Space Administration

Space Telescope Science Institute

Publisher

Oxford University Press (OUP)

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