English

Nuclear energy density functional from chiral two- and three-nucleon interactions

Nuclear Theory 2015-05-30 v1

Abstract

An improved density-matrix expansion is used to calculate the nuclear energy density functional from chiral two- and three-nucleon interactions. The two-body interaction comprises long-range one- and two-pion exchange contributions and a set of contact terms contributing up to fourth power in momenta. In addition we employ the leading order chiral three-nucleon interaction with its parameters cE,cDc_E, c_D and c1,3,4c_{1,3,4} fixed in calculations of nuclear few-body systems. With this input the nuclear energy density functional is derived to first order in the two- and three-nucleon interaction. We find that the strength functions F(ρ)F_\nabla(\rho) and Fso(ρ)F_{so}(\rho) of the surface and spin-orbit terms compare in the relevant density range reasonably with results of phenomenological Skyrme forces. However, an improved description requires (at least) the treatment of the two-body interaction to second order. This observation is in line with the deficiencies in the nuclear matter equation of state Eˉ(ρ)\bar E(\rho) that remain in the Hartree-Fock approximation with low-momentum two- and three-nucleon interactions.

Keywords

Cite

@article{arxiv.1107.5966,
  title  = {Nuclear energy density functional from chiral two- and three-nucleon interactions},
  author = {J. W. Holt and N. Kaiser and W. Weise},
  journal= {arXiv preprint arXiv:1107.5966},
  year   = {2015}
}

Comments

16 pages, 12 figures, submitted to Eur. Phys. J. A

R2 v1 2026-06-21T18:43:57.597Z