Fermionic Dark Matter: Physics, Astrophysics, and Cosmology

Author:

Argüelles C. R.123ORCID,Becerra-Vergara E. A.234ORCID,Rueda J. A.23567ORCID,Ruffini R.238ORCID

Affiliation:

1. Instituto de Astrofísica de La Plata, UNLP-CONICET, Paseo del Bosque S/N, La Plata B1900FWA, Argentina

2. ICRANet, Piazza della Repubblica 10, I-65122 Pescara, Italy

3. ICRA, Dipartimento di Fisica, Sapienza Università di Roma, P.le Aldo Moro 5, I-00185 Rome, Italy

4. FIELDS, Departamento de Ciencias Básicas, Universidad de Investigación y Desarrollo, Bucaramanga 680002, Colombia

5. ICRANet-Ferrara, Dipartimento di Fisica e Scienze della Terra, Università degli Studi di Ferrara, Via Saragat 1, I-44122 Ferrara, Italy

6. Dipartimento di Fisica e Scienze della Terra, Università degli Studi di Ferrara, Via Saragat 1, I-44122 Ferrara, Italy

7. INAF, Istituto de Astrofisica e Planetologia Spaziali, Via Fosso del Cavaliere 100, I-00133 Rome, Italy

8. INAF, Viale del Parco Mellini 84, I-00136 Rome, Italy

Abstract

The nature of dark matter (DM) is one of the most relevant questions in modern astrophysics. We present a brief overview of recent results that inquire into the possible fermionic quantum nature of the DM particles, focusing mainly on the interconnection between the microphysics of the neutral fermions and the macrophysical structure of galactic halos, including their formation both in the linear and non-linear cosmological regimes. We discuss the general relativistic Ruffini–Argüelles–Rueda (RAR) model of fermionic DM in galaxies, its applications to the Milky Way, the possibility that the Galactic center harbors a DM core instead of a supermassive black hole (SMBH), the S-cluster stellar orbits with an in-depth analysis of the S2’s orbit including precession, the application of the RAR model to other galaxy types (dwarf, elliptic, big elliptic, and galaxy clusters), and universal galaxy relations. All the above focus on the model parameters’ constraints most relevant to the fermion mass. We also connect the RAR model fermions with particle physics DM candidates, self-interactions, and galactic observable constraints. The formation and stability of core–halo galactic structures predicted by the RAR model and their relations to warm DM cosmologies are also addressed. Finally, we provide a brief discussion of how gravitational lensing, dynamical friction, and the formation of SMBHs can also probe the DM’s nature.

Publisher

MDPI AG

Subject

General Physics and Astronomy

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