https://doi.org/10.1140/epja/s10050-022-00733-7
Regular Article - Theoretical Physics
Comparison of different relativistic models applied to dense nuclear matter
Univ Lyon, Univ Claude Bernard Lyon 1, CNRS/IN2P3, IP2I Lyon, UMR 5822, 69622, Villeurbanne, France
a
r.somasundaram@ipnl.in2p3.fr
Received:
15
February
2022
Accepted:
14
April
2022
Published online:
3
May
2022
We explore three different classes of relativistic approaches applied to the description of dense nuclear matter: a Walecka-type relativistic mean field model (RMF), an extension including an effective chiral potential (RMF-C) and a further extension with a chiral potential and confinement effects (RMF-CC). The parameters of the latter are controlled by fundamental properties such as the chiral potential, Lattice-QCD predictions, the quark sub-structure, as well as empirical properties at nuclear matter saturation. While these models are calibrated to the same properties at saturation density, they differ in their predictions as the density increases. We take care of parameter uncertainties and propagate them to our predictions for symmetric nuclear matter by employing Bayesian statistics. We show that RMF and RMF-C share common features as the density increases, while RMF-CC behaves differently. For instance, the scalar field at 6 reaches
MeV for RMF-CC while it is larger than
MeV for RMF and RMF-C. Interestingly, we also show that, by fixing the
coupling constant from the quark structure of the nucleon, these three models reproduce only half of the empirical symmetry energy.
© The Author(s), under exclusive licence to Società Italiana di Fisica and Springer-Verlag GmbH Germany, part of Springer Nature 2022