Baryon-driven decontraction in Milky Way-mass haloes

Author:

Forouhar Moreno Victor J1ORCID,Benítez-Llambay Alejandro2ORCID,Cole Shaun1,Frenk Carlos1

Affiliation:

1. Institute for Computational Cosmology, Department of Physics, Durham University, Durham DH1 3LE, UK

2. Dipartimento Di Fisica "Giuseppe Occhialini", University of Milano-Bicocca, Piazza della Scienza, 3, 20126 Milano MI, Italy

Abstract

ABSTRACT We select a sample of Milky Way (MW) mass haloes from a high-resolution version of the EAGLE simulation to study their inner dark matter (DM) content and how baryons alter it. As in previous studies, we find that all haloes are more massive at the centre compared to their dark matter-only (DMO) counterparts at the present day as a result of the dissipational collapse of baryons during the assembly of the galaxy. However, we identify two processes that can reduce the central halo mass during the evolution of the galaxy. First, gas blowouts induced by active galactic nuclei feedback can lead to a substantial decrease of the central DM mass. Secondly, the formation of a stellar bar and its interaction with the DM can induce a secular expansion of the halo; the rate at which DM is evacuated from the central region by this process is related to the average bar strength, and the time-scale on which it acts determines how much the halo has decontracted. Although the inner regions of the haloes we have investigated are still more massive than their DMO counterparts at z = 0, they are significantly less massive than in the past and less massive than expected from the classic adiabatic contraction model. Since the MW has both a central supermassive black hole and a bar, the extent to which its halo has contracted is uncertain. This may affect estimates of the mass of the MW halo and of the expected signals in direct and indirect DM detection experiments.

Funder

European Research Council

European Union

Horizon 2020

SMC

Science and Technology Facilities Council

BEIS

Durham University

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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2. Building stellar bulges and halo cores from massive clumps observed in the DYNAMO-HST sample;Monthly Notices of the Royal Astronomical Society;2024-03-06

3. Multi-TeV dark matter density in the inner Milky Way halo: spectral and dynamical constraints;Journal of Cosmology and Astroparticle Physics;2023-11-01

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