BPS Skyrmions as neutron stars

The BPS Skyrme model has been demonstrated already to provide a physically intriguing and quantitatively reliable description of nuclear matter. Indeed, the model has both the symmetries and the energy–momentum tensor of a perfect fluid, and thus represents a field theoretic realization of the “liqu...

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Main Authors: C. Adam, C. Naya, J. Sanchez-Guillen, R. Vazquez, A. Wereszczynski
Format: Article
Language:English
Published: Elsevier 2015-03-01
Series:Physics Letters B
Online Access:http://www.sciencedirect.com/science/article/pii/S0370269315000374
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spelling doaj-fd1604739eec422180c4d8a4ef3813652020-11-24T22:12:39ZengElsevierPhysics Letters B0370-26932015-03-01742136142BPS Skyrmions as neutron starsC. Adam0C. Naya1J. Sanchez-Guillen2R. Vazquez3A. Wereszczynski4Departamento de Física de Partículas, Universidad de Santiago de Compostela and Instituto Galego de Física de Altas Enerxias (IGFAE), E-15782 Santiago de Compostela, Spain; Corresponding author.Departamento de Física de Partículas, Universidad de Santiago de Compostela and Instituto Galego de Física de Altas Enerxias (IGFAE), E-15782 Santiago de Compostela, SpainDepartamento de Física de Partículas, Universidad de Santiago de Compostela and Instituto Galego de Física de Altas Enerxias (IGFAE), E-15782 Santiago de Compostela, SpainDepartamento de Física de Partículas, Universidad de Santiago de Compostela and Instituto Galego de Física de Altas Enerxias (IGFAE), E-15782 Santiago de Compostela, SpainInstitute of Physics, Jagiellonian University, Reymonta 4, Kraków, PolandThe BPS Skyrme model has been demonstrated already to provide a physically intriguing and quantitatively reliable description of nuclear matter. Indeed, the model has both the symmetries and the energy–momentum tensor of a perfect fluid, and thus represents a field theoretic realization of the “liquid droplet” model of nuclear matter. In addition, the classical soliton solutions together with some obvious corrections (spin–isospin quantization, Coulomb energy, proton–neutron mass difference) provide an accurate modeling of nuclear binding energies for heavier nuclei. These results lead to the rather natural proposal to try to describe also neutron stars by the BPS Skyrme model coupled to gravity. We find that the resulting self-gravitating BPS Skyrmions provide excellent results as well as some new perspectives for the description of bulk properties of neutron stars when the parameter values of the model are extracted from nuclear physics. Specifically, the maximum possible mass of a neutron star before black-hole formation sets in is a few solar masses, the precise value of which depends on the precise values of the model parameters, and the resulting neutron star radius is of the order of 10 km.http://www.sciencedirect.com/science/article/pii/S0370269315000374
collection DOAJ
language English
format Article
sources DOAJ
author C. Adam
C. Naya
J. Sanchez-Guillen
R. Vazquez
A. Wereszczynski
spellingShingle C. Adam
C. Naya
J. Sanchez-Guillen
R. Vazquez
A. Wereszczynski
BPS Skyrmions as neutron stars
Physics Letters B
author_facet C. Adam
C. Naya
J. Sanchez-Guillen
R. Vazquez
A. Wereszczynski
author_sort C. Adam
title BPS Skyrmions as neutron stars
title_short BPS Skyrmions as neutron stars
title_full BPS Skyrmions as neutron stars
title_fullStr BPS Skyrmions as neutron stars
title_full_unstemmed BPS Skyrmions as neutron stars
title_sort bps skyrmions as neutron stars
publisher Elsevier
series Physics Letters B
issn 0370-2693
publishDate 2015-03-01
description The BPS Skyrme model has been demonstrated already to provide a physically intriguing and quantitatively reliable description of nuclear matter. Indeed, the model has both the symmetries and the energy–momentum tensor of a perfect fluid, and thus represents a field theoretic realization of the “liquid droplet” model of nuclear matter. In addition, the classical soliton solutions together with some obvious corrections (spin–isospin quantization, Coulomb energy, proton–neutron mass difference) provide an accurate modeling of nuclear binding energies for heavier nuclei. These results lead to the rather natural proposal to try to describe also neutron stars by the BPS Skyrme model coupled to gravity. We find that the resulting self-gravitating BPS Skyrmions provide excellent results as well as some new perspectives for the description of bulk properties of neutron stars when the parameter values of the model are extracted from nuclear physics. Specifically, the maximum possible mass of a neutron star before black-hole formation sets in is a few solar masses, the precise value of which depends on the precise values of the model parameters, and the resulting neutron star radius is of the order of 10 km.
url http://www.sciencedirect.com/science/article/pii/S0370269315000374
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