Constraints on the speed of sound of dense nuclear matter through the tidal deformability of neutron stars

One of the greatest interest and open problems in nuclear physics is the upper limit of the speed of sound in dense nuclear matter. Neutron stars, both in isolated and binary system cases, constitute a very promising natural laboratory for studying this kind of problem. This present work is based on...

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Main Authors: Kanakis-Pegios Alkiviadis, Koliogiannis Polychronis, Moustakidis Charalampos
Format: Article
Language:English
Published: EDP Sciences 2021-01-01
Series:EPJ Web of Conferences
Online Access:https://www.epj-conferences.org/articles/epjconf/pdf/2021/06/epjconf_hinpw62021_05005.pdf
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spelling doaj-9e17b166f0f54111b449e7209c3051b02021-09-21T15:17:07ZengEDP SciencesEPJ Web of Conferences2100-014X2021-01-012520500510.1051/epjconf/202125205005epjconf_hinpw62021_05005Constraints on the speed of sound of dense nuclear matter through the tidal deformability of neutron starsKanakis-Pegios Alkiviadis0Koliogiannis Polychronis1Moustakidis Charalampos2Department of Theoretical Physics, Aristotle University of ThessalonikiDepartment of Theoretical Physics, Aristotle University of ThessalonikiDepartment of Theoretical Physics, Aristotle University of ThessalonikiOne of the greatest interest and open problems in nuclear physics is the upper limit of the speed of sound in dense nuclear matter. Neutron stars, both in isolated and binary system cases, constitute a very promising natural laboratory for studying this kind of problem. This present work is based on one of our recent study, regarding the speed of sound and possible constraints that we can obtain from neutron stars. To be more specific, in the core of our study lies the examination of the speed of sound through the measured tidal deformability of a binary neutron star system (during the inspiral phase). The relation between the maximum neutron star mass scenario and the possible upper bound on the speed of sound is investigated. The approach that we used follows the contradiction between the recent observations of binary neutron star systems, in which the effective tidal deformability favors softer equations of state, while the high measured masses of isolated neutron stars favor stiffer equations of state. In our approach, we parametrized the stiffness of the equation of state by using the speed of sound. Moreover, we used the two recent observations of binary neutron star mergers from LIGO/VIRGO, so that we can impose robust constraints on the speed of sound. Furthermore, we postulate the kind of future measurements that could be helpful by imposing more stringent constraints on the equation of state.https://www.epj-conferences.org/articles/epjconf/pdf/2021/06/epjconf_hinpw62021_05005.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Kanakis-Pegios Alkiviadis
Koliogiannis Polychronis
Moustakidis Charalampos
spellingShingle Kanakis-Pegios Alkiviadis
Koliogiannis Polychronis
Moustakidis Charalampos
Constraints on the speed of sound of dense nuclear matter through the tidal deformability of neutron stars
EPJ Web of Conferences
author_facet Kanakis-Pegios Alkiviadis
Koliogiannis Polychronis
Moustakidis Charalampos
author_sort Kanakis-Pegios Alkiviadis
title Constraints on the speed of sound of dense nuclear matter through the tidal deformability of neutron stars
title_short Constraints on the speed of sound of dense nuclear matter through the tidal deformability of neutron stars
title_full Constraints on the speed of sound of dense nuclear matter through the tidal deformability of neutron stars
title_fullStr Constraints on the speed of sound of dense nuclear matter through the tidal deformability of neutron stars
title_full_unstemmed Constraints on the speed of sound of dense nuclear matter through the tidal deformability of neutron stars
title_sort constraints on the speed of sound of dense nuclear matter through the tidal deformability of neutron stars
publisher EDP Sciences
series EPJ Web of Conferences
issn 2100-014X
publishDate 2021-01-01
description One of the greatest interest and open problems in nuclear physics is the upper limit of the speed of sound in dense nuclear matter. Neutron stars, both in isolated and binary system cases, constitute a very promising natural laboratory for studying this kind of problem. This present work is based on one of our recent study, regarding the speed of sound and possible constraints that we can obtain from neutron stars. To be more specific, in the core of our study lies the examination of the speed of sound through the measured tidal deformability of a binary neutron star system (during the inspiral phase). The relation between the maximum neutron star mass scenario and the possible upper bound on the speed of sound is investigated. The approach that we used follows the contradiction between the recent observations of binary neutron star systems, in which the effective tidal deformability favors softer equations of state, while the high measured masses of isolated neutron stars favor stiffer equations of state. In our approach, we parametrized the stiffness of the equation of state by using the speed of sound. Moreover, we used the two recent observations of binary neutron star mergers from LIGO/VIRGO, so that we can impose robust constraints on the speed of sound. Furthermore, we postulate the kind of future measurements that could be helpful by imposing more stringent constraints on the equation of state.
url https://www.epj-conferences.org/articles/epjconf/pdf/2021/06/epjconf_hinpw62021_05005.pdf
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