The impact of cosmic rays on the interstellar medium and galactic outflows of Milky Way analogues

Author:

Rodríguez Montero Francisco1ORCID,Martin-Alvarez Sergio2ORCID,Slyz Adrianne1,Devriendt Julien13,Dubois Yohan4,Sijacki Debora5

Affiliation:

1. Sub-department of Astrophysics, University of Oxford , Denys Wilkinson Building, Keble Road, Oxford OX1 3RH , UK

2. Kavli Institute for Particle Astrophysics and Cosmology (KIPAC), Stanford University , Stanford, CA 94305 , USA

3. CNRS, Centre de Recherche Astrophysique de Lyon, Université de Lyon , Université Lyon 1, ENS de Lyon, UMR 5574, F-69230 Saint-Genis-Laval , France

4. Institut d’Astrophysique de Paris , UMR 7095, Sorbonne Université, CNRS, 98 bis boulevard Arago, F-75014 Paris , France

5. Institute of Astronomy and Kavli Institute for Cosmology, University of Cambridge , Madingley Road, Cambridge CB3 0HA , UK

Abstract

ABSTRACT During the last decade, cosmological simulations have managed to reproduce realistic and morphologically diverse galaxies, spanning the Hubble sequence. Central to this success was a phenomenological calibration of the few included feedback processes, while glossing over higher complexity baryonic physics. This approach diminishes the predictive power of such simulations, preventing to further our understanding of galaxy formation. To tackle this fundamental issue, we investigate the impact of cosmic rays (CRs) and magnetic fields on the interstellar medium and the launching of outflows in a cosmological zoom-in simulation of a Milky Way-like galaxy. We find that including CRs decreases the stellar mass of the galaxy by a factor of 10 at high redshift and ∼4 at cosmic noon, leading to a stellar mass to halo mass ratio in good agreement with abundance matching models. Such decrease is caused by two effects: (i) a reduction of cold, high-density, star-forming gas, and (ii) a larger fraction of supernova (SN) events exploding at lower densities, where they have a higher impact. SN-injected CRs produce enhanced, multiphase galactic outflows, which are accelerated by CR pressure gradients in the circumgalactic medium of the galaxy. While the mass budget of these outflows is dominated by the warm ionized gas, warm neutral and cold gas phases contribute significantly at high redshifts. Importantly, our work shows that future JWST observations of galaxies and their multiphase outflows across cosmic time have the ability to constrain the role of CRs in regulating star formation.

Funder

European Research Council

STFC

Publisher

Oxford University Press (OUP)

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