English

The QCD phase transition with physical-mass, chiral quarks

High Energy Physics - Lattice 2014-08-27 v1

Abstract

We report on the first lattice calculation of the QCD phase transition using chiral fermions at physical values of the quark masses. This calculation uses 2+1 quark flavors, spatial volumes between (4 fm)3)^3 and (11 fm)3)^3 and temperatures between 139 and 196 MeV . Each temperature was calculated using a single lattice spacing corresponding to a temporal Euclidean extent of Nt=8N_t=8. The disconnected chiral susceptibility, χdisc\chi_{\rm disc} shows a pronounced peak whose position and height depend sensitively on the quark mass. We find no metastability in the region of the peak and a peak height which does not change when a 5 fm spatial extent is increased to 10 fm. Each result is strong evidence that the QCD ``phase transition'' is not first order but a continuous cross-over for mπ=135m_\pi=135 MeV. The peak location determines a pseudo-critical temperature Tc=155(1)(8)T_c = 155(1)(8) MeV. Chiral SU(2)L×SU(2)RSU(2)_L\times SU(2)_R symmetry is fully restored above 164 MeV, but anomalous U(1)AU(1)_A symmetry breaking is non-zero above TcT_c and vanishes as TT is increased to 196 MeV.

Keywords

Cite

@article{arxiv.1402.5175,
  title  = {The QCD phase transition with physical-mass, chiral quarks},
  author = {Tanmoy Bhattacharya and Michael I. Buchoff and Norman H. Christ and H. -T. Ding and Rajan Gupta and Chulwoo Jung and F. Karsch and Zhongjie Lin and R. D. Mawhinney and Greg McGlynn and Swagato Mukherjee and David Murphy and P. Petreczky and Chris Schroeder and R A. Soltz and P. M. Vranas and Hantao Yin},
  journal= {arXiv preprint arXiv:1402.5175},
  year   = {2014}
}

Comments

6 pages and 4 figures