Nuclear phase transition and thermodynamic instabilities in dense nuclear matter

We study the presence of thermodynamic instabilities in a nuclear medium at finite temperature and density where nuclear phase transitions can take place. Such a phase transition is characterized by pure hadronic matter with both mechanical instability (fluctuations on the baryon density) that by ch...

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Main Author: Lavagno A.
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:EPJ Web of Conferences
Online Access:https://doi.org/10.1051/epjconf/201818203007
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spelling doaj-ff510f37b2e64343a19674a4b977ba422021-08-02T05:19:58ZengEDP SciencesEPJ Web of Conferences2100-014X2018-01-011820300710.1051/epjconf/201818203007epjconf_icnfp2018_03007Nuclear phase transition and thermodynamic instabilities in dense nuclear matterLavagno A.We study the presence of thermodynamic instabilities in a nuclear medium at finite temperature and density where nuclear phase transitions can take place. Such a phase transition is characterized by pure hadronic matter with both mechanical instability (fluctuations on the baryon density) that by chemical-diffusive instability (fluctuations on the electric charge concentration). Similarly to the liquid-gas phase transition, the nucleonic and the Δ-matter phase have a different isospin density in the mixed phase. In the liquid-gas phase transition, the process of producing a larger neutron excess in the gas phase is referred to as isospin fractionation. A similar effects can occur in the nucleon-Δ matter phase transition due essentially to a Δ- excess in the Δ-matter phase in asymmetric nuclear matter. In this context we also discuss the relevance of Δ-isobar and hyperon degrees of freedom in the bulk properties of the protoneutron stars at fixed entropy per baryon, in the presence and in the absence of trapped neutrinos.https://doi.org/10.1051/epjconf/201818203007
collection DOAJ
language English
format Article
sources DOAJ
author Lavagno A.
spellingShingle Lavagno A.
Nuclear phase transition and thermodynamic instabilities in dense nuclear matter
EPJ Web of Conferences
author_facet Lavagno A.
author_sort Lavagno A.
title Nuclear phase transition and thermodynamic instabilities in dense nuclear matter
title_short Nuclear phase transition and thermodynamic instabilities in dense nuclear matter
title_full Nuclear phase transition and thermodynamic instabilities in dense nuclear matter
title_fullStr Nuclear phase transition and thermodynamic instabilities in dense nuclear matter
title_full_unstemmed Nuclear phase transition and thermodynamic instabilities in dense nuclear matter
title_sort nuclear phase transition and thermodynamic instabilities in dense nuclear matter
publisher EDP Sciences
series EPJ Web of Conferences
issn 2100-014X
publishDate 2018-01-01
description We study the presence of thermodynamic instabilities in a nuclear medium at finite temperature and density where nuclear phase transitions can take place. Such a phase transition is characterized by pure hadronic matter with both mechanical instability (fluctuations on the baryon density) that by chemical-diffusive instability (fluctuations on the electric charge concentration). Similarly to the liquid-gas phase transition, the nucleonic and the Δ-matter phase have a different isospin density in the mixed phase. In the liquid-gas phase transition, the process of producing a larger neutron excess in the gas phase is referred to as isospin fractionation. A similar effects can occur in the nucleon-Δ matter phase transition due essentially to a Δ- excess in the Δ-matter phase in asymmetric nuclear matter. In this context we also discuss the relevance of Δ-isobar and hyperon degrees of freedom in the bulk properties of the protoneutron stars at fixed entropy per baryon, in the presence and in the absence of trapped neutrinos.
url https://doi.org/10.1051/epjconf/201818203007
work_keys_str_mv AT lavagnoa nuclearphasetransitionandthermodynamicinstabilitiesindensenuclearmatter
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