English

Spin polarized phases in strongly interacting matter: interplay between axial-vector and tensor mean fields

High Energy Physics - Phenomenology 2018-06-20 v2 Nuclear Theory

Abstract

The spontaneous spin polarization of strongly interacting matter due to axial-vector and tensor type interactions is studied at zero temperature and high baryon-number densities. We start with the mean-field Lagrangian for the axial-vector and tensor interaction channels, and find in the chiral limit that the spin polarization due to the tensor mean field (UU) takes place first as the density increases for sufficiently strong coupling constants, and then that due to the axial-vector mean field (AA) emerges in the region of finite tensor mean field. This can be understood that making the axial-vector mean field finite requires a broken chiral symmetry somehow, which is achieved by the finite tensor mean field in the present case. It is also found from symmetry argument that there appear the type I (II) Nambu-Goldstone modes with a linear (quadratic) dispersion in the spin polarized phase with U0U\neq0 and A=0A=0 (U0U\neq0 and A0A\neq0), although these two phases exhibit the same symmetry breaking pattern.

Keywords

Cite

@article{arxiv.1803.08315,
  title  = {Spin polarized phases in strongly interacting matter: interplay between axial-vector and tensor mean fields},
  author = {Tomoyuki Maruyama and Eiji Nakano and Kota Yanase and Naotaka Yoshinaga},
  journal= {arXiv preprint arXiv:1803.08315},
  year   = {2018}
}

Comments

9pages , 5 figures. Version accepted in PRD. Baryon number density has been added in Fig 3, and misprints were corrected

R2 v1 2026-06-23T01:01:42.989Z