Oscillating magnetized hybrid stars under the magnifying glass of multimessenger observations

Author:

Mariani Mauro12ORCID,Tonetto Lucas34,Rodríguez M Camila12,Celi Marcos O1,Ranea-Sandoval Ignacio F12,Orsaria Milva G12ORCID,Pérez Martínez Aurora5

Affiliation:

1. Grupo de Gravitación, Astrofísica y Cosmología, Facultad de Ciencias Astronómicas y Geofísicas, Universidad Nacional de La Plata , Paseo del Bosque S/N, 1900, Argentina

2. CONICET , Godoy Cruz 2290, 1425 Buenos Aires, Argentina

3. Dipartimento di Fisica , ‘Sapienza’ University of Rome, Piazzale A. Moro, 5. 00185 Roma, Italy

4. INFN, Sezione di Roma , Piazzale A. Moro, 5. 00185 Roma, Italy

5. Departamento de Física Fundamental, Universidad de Salamanca , Plaza de la Merced s/n 37008, Spain

Abstract

ABSTRACT We model neutron stars as magnetized hybrid stars with an abrupt hadron–quark phase transition in their cores, taking into account current constraints from nuclear experiments and multimessenger observations. We include magnetic field effects considering the Landau level quantization of charged particles and the anomalous magnetic moment of neutral particles. We construct the magnetized hybrid equation of state, and we compute the particle population, the matter magnetization and the transverse and parallel pressure components. We integrate the stable stellar models, considering the dynamical stability for rapid or slow hadron–quark phase conversion. Finally, we calculate the frequencies and damping times of the fundamental and g non-radial oscillation modes. The latter, a key mode to learn about phase transitions in compact objects, is only obtained for stars with slow conversions. For low magnetic fields, we find that one of the objects of the GW170817 binary system might be a hybrid star belonging to the slow extended stability branch. For magnetars, we find that a stronger magnetic field always softens the hadronic equation of state. Besides, only for some parameter combinations a stronger magnetic field implies a higher hybrid star maximum mass. Contrary to previous results, the incorporation of anomalous magnetic moment does not affect the studied astrophysical quantities. We discuss possible imprints of the microphysics of the equation of state that could be tested observationally in the future, and that might help infer the nature of dense matter and hybrid stars.

Funder

CONICET

UNLP

ANPCyT

National Science Foundation

Instituto Nazionale di Fisica Nucleare

Agencia Estatal de Investigación

COST

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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