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Imposing multi-physics constraints at different densities on the Neutron Star Equation of State

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arxiv 2107.09371 v3 pith:4E36XOWZ submitted 2021-07-20 astro-ph.HE nucl-th

Imposing multi-physics constraints at different densities on the Neutron Star Equation of State

classification astro-ph.HE nucl-th
keywords neutronnuclearmatterdensitystarastrophysicalcollisionconstraints
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Neutron star matter spans a wide range of densities, from that of nuclei at the surface to exceeding several times normal nuclear matter density in the core. While terrestrial experiments, such as nuclear or heavy-ion collision experiments, provide clues about the behaviour of dense nuclear matter, one must resort to theoretical models of neutron star matter to extrapolate to higher density and finite neutron/proton asymmetry relevant for neutron stars. In this work, we explore the parameter space within the framework of the Relativistic Mean Field model allowed by present uncertainties compatible with state-of-the-art experimental data. We apply a cut-off filter scheme to constrain the parameter space using multi-physics constraints at different density regimes: chiral effective field theory, nuclear and heavy-ion collision data as well as multi-messenger astrophysical observations of neutron stars. Using the results of the study, we investigate possible correlations between nuclear and astrophysical observables.

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  1. Relativistic Mean Field Approach with Chiral Symmetry Breaking and Quark Confinement in the light of Astrophysical Observations

    nucl-th 2026-07 conditional novelty 5.0

    RMF-CC models with ωρ coupling better match multi-messenger NS data and LQCD/NEP constraints than the baseline, yet standard RMF remains preferred without core phase transitions, requiring high Ksat ~300 MeV.