English

Chiral phase structure of three flavor QCD in a background magnetic field

High Energy Physics - Lattice 2020-09-23 v2 Nuclear Theory

Abstract

We investigate the chiral phase structure of three flavor QCD in a background U(1)U(1) magnetic field using the standard staggered action and the Wilson plaquette gauge action. We perform simulations on lattices with a temporal extent of Nτ=4N_\tau=4 and four spatial extents of Nσ=8,16,20N_\sigma = 8,16, 20 and 24. We choose a smaller-than-physical quark mass in lattice spacing as am=0.030am = 0.030 such that there exists a crossover transition at vanishing magnetic fields, and adopt two values of magnetic field strength in lattice spacing aeB1.5a \sqrt{ e{B}}\simeq 1.5 and 2. We find that the transition becomes stronger in the presence of a background magnetic field, and turns into a first order as seen from the volume scaling of the order parameter susceptibility as well as the metastable states in the time history of the chiral condensate. On the other hand, the chiral condensate and transition temperature always increase with BB even within the regime of a first order phase transition. This suggests that the discrepancy in the behavior of chiral condensates and transition temperature as a function of BB between earlier lattice studies using larger-than-physical pion masses with standard staggered fermions and those using physical pions with improved staggered fermions is mainly due to lattice cutoff effects.

Keywords

Cite

@article{arxiv.2006.13422,
  title  = {Chiral phase structure of three flavor QCD in a background magnetic field},
  author = {Heng-Tong Ding and Christian Schmidt and Akio Tomiya and Xiao-Dan Wang},
  journal= {arXiv preprint arXiv:2006.13422},
  year   = {2020}
}

Comments

23 pages, 9 figures