English

Pion condensation and QCD phase diagram at finite isospin density

High Energy Physics - Phenomenology 2018-10-02 v1

Abstract

We use the Polyakov-loop extended two-flavor quark-meson model as a low-energy effective model for QCD to study 1) the possibility of inhomogeneous chiral condensates and its competition with a homogeneous pion condensate in the μ\mu--μI\mu_I plane at T=0T=0 and 2) the phase diagram in the μI\mu_I--TT plane. In the μ\mu--μI\mu_I plane, we find that an inhomogeneous chiral condensate only exists for pion masses lower that 37.1 MeV and does not coexist with a homogeneous pion condensate. In the μI\mu_I--TT plane, we find that the phase transition to a Bose-condensed phase is of second order for all values of μI\mu_I and we find that there is no pion condensation for temperatures larger than approximately 187 MeV. The chiral critical line joins the critical line for pion condensation at a point, whose position depends on the Polyakov-loop potential and the sigma mass. For larger values of μI\mu_I these curves are on top of each other. The deconfinement line enters smoothly the phase with the broken O(2)O(2) symmetry. We compare our results with recent lattice simulations and find overall good agreement

Keywords

Cite

@article{arxiv.1810.00419,
  title  = {Pion condensation and QCD phase diagram at finite isospin density},
  author = {Jens O. Andersen and Prabal Adhikari and Patrick Kneschke},
  journal= {arXiv preprint arXiv:1810.00419},
  year   = {2018}
}

Comments

8 pages, 7 figs. Talk given at XIII Quark Confinement and the Hadron Spectrum - Confinement2018 31 July - 6 August 2018 Maynooth University, Ireland