English

Spin-polarized states of nuclear matter

Nuclear Theory 2018-01-17 v1

Abstract

The equations of state of spin-polarized nuclear matter and pure neutron matter are studied in the framework of the Brueckner-Hartree-Fock theory including a three-body force. The energy per nucleon EA(δ)E_A(\delta) calculated in the full range of spin polarization δ=ρρρ{\delta} = \frac{\rho_{\uparrow}-\rho_{\downarrow}}{\rho} for symmetric nuclear matter and pure neutron matter fulfills a parabolic law. In both cases the spin-symmetry energy is calculated as a function of the baryonic density along with the related quantities such as the magnetic susceptibility and the Landau parameter G0G_0. The main effect of the three-body force is to strongly reduce the degenerate Fermi gas magnetic susceptibility even more than the value with only two body force. The EOS is monotonically increasing with the density for all spin-aligned configurations studied here so that no any signature is found for a spontaneous transition to a ferromagnetic state.

Keywords

Cite

@article{arxiv.nucl-th/0204056,
  title  = {Spin-polarized states of nuclear matter},
  author = {W. Zuo and U. Lombardo and C. W. Shen},
  journal= {arXiv preprint arXiv:nucl-th/0204056},
  year   = {2018}
}

Comments

Contribution to GISELDA Meeting, 14-18 January, 2002 (Frascati), to appear in World Scientific (Singapore)