Nuclear energy density functional from chiral pion-nucleon dynamics: Isovector terms
Abstract
We extend a recent calculation of the nuclear energy density functional in the framework of chiral perturbation theory by computing the isovector surface and spin-orbit terms: (\vec \nabla \rho_p- \vec \nabla \rho_n)^2 G_d(\rho)+ (\vec \nabla \rho_p- \vec \nabla \rho_n)\cdot(\vec J_p-\vec J_n) G_{so(\rho)+(\vec J_p-\vec J_n)^2 G_J(\rho) pertaining to different proton and neutron densities. Our calculation treats systematically the effects from -exchange, iterated -exchange, and irreducible -exchange with intermediate -isobar excitations, including Pauli-blocking corrections up to three-loop order. Using an improved density-matrix expansion, we obtain results for the strength functions , and which are considerably larger than those of phenomenological Skyrme forces. These (parameter-free) predictions for the strength of the isovector surface and spin-orbit terms as provided by the long-range pion-exchange dynamics in the nuclear medium should be examined in nuclear structure calculations at large neutron excess.
Keywords
Cite
@article{arxiv.1003.1143,
title = {Nuclear energy density functional from chiral pion-nucleon dynamics: Isovector terms},
author = {N. Kaiser},
journal= {arXiv preprint arXiv:1003.1143},
year = {2014}
}
Comments
12 pages, 5 figures