The nuclear liquid-gas transition in QCD
Abstract
We estimate the nuclear saturation density and the binding energy in a nuclear liquid from precision data on the coupling of the four-quark scattering vertex in the vector channel, computed within functional QCD. We show that this coupling is directly related to the density-density potential and the latter is used for the estimates. In a first qualitative computation we find a saturation density of 0.2 fm and an upper bound for the binding energy of 21.5 MeV, in agreement with the empirical values of 0.16 fm and 16 MeV, respectively. We also use the scattering vertex for constructing an emergent low-energy effective theory for the liquid gas transition from QCD correlation function, whose coupling parameters can be determined within QCD. As a first consistency check of this construction we estimate the in-medium reduction of the nucleon pole mass.
Keywords
Cite
@article{arxiv.2308.16594,
title = {The nuclear liquid-gas transition in QCD},
author = {Kenji Fukushima and Jan Horak and Jan M. Pawlowski and Nicolas Wink and Carl Philipp Zelle},
journal= {arXiv preprint arXiv:2308.16594},
year = {2023}
}
Comments
13 pages, 4 figures