Thermodynamics of the parity-doublet model: Symmetric nuclear matter and the chiral transition
J\"urgen Eser, Jean-Paul Blaizot

TL;DR
This paper analyzes the thermodynamics of the parity-doublet nucleon-meson model at finite temperature and density, focusing on the chiral transition and its underlying mechanisms, with comparisons to a singlet model and insights into nuclear matter properties.
Contribution
It provides a comprehensive mean-field analysis of the parity-doublet model, highlighting the role of symmetry energy and chiral-invariant mass in the chiral transition at high densities.
Findings
Chiral transition driven by symmetry energy balancing parity baryon populations
Nuclear matter properties and liquid-gas transition characterized
Chiral-invariant mass plays a key thermodynamic role
Abstract
We present a detailed discussion of the thermodynamics of the parity-doublet nucleon-meson model within a mean-field theory, at finite temperature and baryon-chemical potential, with special emphasis on the chiral transition at large baryon densities and vanishing temperature. We consider isospin-symmetric matter. We systematically compare the parity-doublet model to a related singlet model obtained by disregarding the chiral partner of the nucleon. After studying the ground state properties of nuclear matter, the nuclear liquid-gas transition, and the density modifications of the nucleon sigma term which govern the low-density regime, we give new insight into the underlying mechanisms of the zero-temperature chiral transition occurring at several times the nuclear saturation density. We show that the chiral transition is driven by a kind of symmetry energy that tends to equilibrate the…
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Taxonomy
TopicsQuantum, superfluid, helium dynamics · Nuclear physics research studies · High-Energy Particle Collisions Research
