Hot and dense matter beyond relativistic mean field theory
Xilin Zhang, Madappa Prakash

TL;DR
This paper extends quantum hadro-dynamics to include two-loop diagrams, improving the modeling of hot and dense nuclear matter, with results relevant for neutron stars and astrophysical phenomena.
Contribution
It introduces a two-loop correction to mean-field theory, providing a more accurate equation of state for dense matter applicable to astrophysics.
Findings
TL results agree with quantum Monte Carlo at sub-nuclear densities
TL EOS supports 2 solar mass neutron stars, softer than MFT
Thermal properties align with Landau Fermi-Liquid theory
Abstract
Properties of hot and dense matter are calculated in the framework of quantum hadro-dynamics by including contributions from two-loop (TL) diagrams arising from the exchange of iso-scalar and iso-vector mesons between nucleons. Our extension of mean-field theory (MFT) employs the same five density-independent coupling strengths which are calibrated using the empirical properties at the equilibrium density of iso-spin symmetric matter. Results of calculations from the MFT and TL approximations are compared for conditions of density, temperature, and proton fraction encountered in astrophysics applications involving compact objects. The TL results for the equation of state (EOS) of cold pure neutron matter at sub- and near-nuclear densities agree well with those of modern quantum Monte Carlo and effective field-theoretical approaches. Although the high-density EOS in the TL approximation…
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