English

Spin-isospin stability of nuclear matter

Nuclear Theory 2009-11-11 v1

Abstract

We calculate the density-dependent spin-isospin asymmetry energy J(kf)J(k_f) of nuclear matter in the three-loop approximation of chiral perturbation theory. The interaction contributions to J(kf)J(k_f) originate from one-pion exchange, iterated one-pion exchange, and irreducible two-pion exchange with no, single, and double virtual Δ\Delta-isobar excitation. We find that the approximation to 1π1\pi-exchange and iterated 1π1\pi-exchange terms (which leads already to a good nuclear matter equation of state by adjusting an emerging contact-term) is spin-isospin stable, since J(kf0)24MeV>0J(k_{f0})\simeq 24 {\rm MeV}>0. The inclusion of the chiral πNΔ\pi N\Delta-dynamics, necessary in order to guarantee the spin-stability of nuclear matter, keeps this property intact. The corresponding spin-isospin asymmetry energy J(kf)J(k_f) stays positive even for extreme values of an undetermined short-distance parameter J5J_5 (whose possible range we estimate from realistic NN-potentials). The largest positive contribution to J(kf)J(k_f) (a term linear in density) comes from a two-body contact-term with its strength fitted to the empirical nuclear matter saturation point.

Keywords

Cite

@article{arxiv.nucl-th/0601102,
  title  = {Spin-isospin stability of nuclear matter},
  author = {N. Kaiser},
  journal= {arXiv preprint arXiv:nucl-th/0601102},
  year   = {2009}
}

Comments

10 pages, 6 figures, published in: Phys. Rev. C72, 014007 (2005)