arXiv:hep-lat/0609068·v2·High Energy Physics — Lattice
The QCD transition temperature: results with physical masses in the continuum limit
Y. Aoki🇩🇪 · Z. Fodor🇩🇪 · S.D. Katz🇩🇪 · K.K. Szabo🇩🇪
Abstract
The transition temperature () of QCD is determined by Symanzik improved gauge and stout-link improved staggered fermionic lattice simulations. We use physical masses both for the light quarks () and for the strange quark (). Four sets of lattice spacings (=4,6,8 and 10) were used to carry out a continuum extrapolation. It turned out that only =6,8 and 10 can be used for a controlled extrapolation, =4 is out of the scaling region. Since the QCD transition is a non-singular cross-over there is no unique . Thus, different observables lead to different numerical values even in the continuum and thermodynamic limit. The peak of the renormalized chiral susceptibility predicts =151(3)(3) MeV, wheres -s based on the strange quark number susceptibility and Polyakov loops result in 24(4) MeV and 25(4) MeV larger values, respectively. Another consequence of the cross-over is the non-vanishing width of the peaks even in the thermodynamic limit, which we also determine. These numbers are attempted to be the full result for the 0 transition, though other lattice fermion formulations (e.g. Wilson) are needed to cross-check them.
Comments: 13 pages 5 figures. Final version, published in Phys.Lett.B