A Bayesian Approach Study of Hybrid Neutron Stars

Fuente: arXiv
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Main Authors: Köpp, Fábio, Lenzi, César H., Flores, César V., Menezes, and Débora P.
Format: Preprint
Published: 2025
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author Köpp, Fábio
Lenzi, César H.
Flores, César V.
Menezes, and Débora P.
author_facet Köpp, Fábio
Lenzi, César H.
Flores, César V.
Menezes, and Débora P.
contents In this work, we explore how astronomical observations (specifically measurements of masses, radii, and tidal deformabilities) can constrain the presence of quark matter inside neutron stars, namely the phase transition from nuclear matter to deconfined quark matter. Our approach employs Bayesian analysis to study this phenomenon. Hadronic matter is modeled using the relativistic mean-field (RMF) approximation, for which we have selected two parameter sets: \(NL3^{*}ωρ\), representing hadronic matter with nucleons only, and $EL3ωρ$ with nucleons only and $EL3ωρY$, which includes hyperons. On the other hand deconfined quark matter is modeled using the vector-MIT bag model. For our purpose, the phase transition is implemented using the Maxwell construction. Bayesian inference is performed by tuning three parameters: the bag constant (i.e. $B^{1/4}$), the vector coupling constant \(\left(G_{v}\right)\), and the Dirac sea contribution ($b_{4}$). We found that a phase transition could exist at densities below \(2.0\,n_{0}\) for both the $EL3ωρ- EL3ωρY $ and $NL3^{*}ωρ$ parametrizations. As a consequence, our results also indicate that a hybrid neutron star could have a large quark core that comprises more than \(80\%\) of its size.
format Preprint
id arxiv_https___arxiv_org_abs_2512_08911
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A Bayesian Approach Study of Hybrid Neutron Stars
Köpp, Fábio
Lenzi, César H.
Flores, César V.
Menezes, and Débora P.
Nuclear Theory
High Energy Astrophysical Phenomena
In this work, we explore how astronomical observations (specifically measurements of masses, radii, and tidal deformabilities) can constrain the presence of quark matter inside neutron stars, namely the phase transition from nuclear matter to deconfined quark matter. Our approach employs Bayesian analysis to study this phenomenon. Hadronic matter is modeled using the relativistic mean-field (RMF) approximation, for which we have selected two parameter sets: \(NL3^{*}ωρ\), representing hadronic matter with nucleons only, and $EL3ωρ$ with nucleons only and $EL3ωρY$, which includes hyperons. On the other hand deconfined quark matter is modeled using the vector-MIT bag model. For our purpose, the phase transition is implemented using the Maxwell construction. Bayesian inference is performed by tuning three parameters: the bag constant (i.e. $B^{1/4}$), the vector coupling constant \(\left(G_{v}\right)\), and the Dirac sea contribution ($b_{4}$). We found that a phase transition could exist at densities below \(2.0\,n_{0}\) for both the $EL3ωρ- EL3ωρY $ and $NL3^{*}ωρ$ parametrizations. As a consequence, our results also indicate that a hybrid neutron star could have a large quark core that comprises more than \(80\%\) of its size.
title A Bayesian Approach Study of Hybrid Neutron Stars
topic Nuclear Theory
High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2512.08911