English

Two-color QCD in a strong magnetic field: The role of the Polyakov loop

High Energy Physics - Phenomenology 2013-07-12 v4 High Energy Physics - Theory Nuclear Theory

Abstract

We study two-color QCD in an external magnetic backround at finite temperature using the Polyakov-loop extended two-flavor two-color NJL model. At T=0, the chiral condensate is calculated and it is found to increase as a function of the magnetic field BB. In the chiral limit the deconfinement transition lies below the chiral transition for nonzero magnetic fields BB. At the physical point, the two transitions seem to coincide for field strengths up to qB5mπ2|qB|\approx 5m_{\pi}^2 whereafter they split. The splitting between the two increases as a function of BB in both the chiral limit and at the physical point. In the range from zero magnetic field and qB=20mπ2|qB|=20 m_{\pi}^2, the transition temperature for the chiral transition increases by approximately 35 MeV, while the transition temperature for deconfinement is essentially constant.

Keywords

Cite

@article{arxiv.1211.7293,
  title  = {Two-color QCD in a strong magnetic field: The role of the Polyakov loop},
  author = {Jens O. Andersen and Arturo A. Cruz},
  journal= {arXiv preprint arXiv:1211.7293},
  year   = {2013}
}

Comments

11 pages and 8 figures. v2 matches published version in PRD