| Literature DB >> 28401889 |
Zhu-Fang Cui1,2, Jin-Li Zhang1, Hong-Shi Zong1,2,3.
Abstract
We study the QCD chiral phase transition at finite temperature and finite quark chemical potential within the two flavor Nambu-Jona-Lasinio (NJL) model, where a generalization of the proper-time regularization scheme is motivated and implemented. We find that in the chiral limit the whole transition line in the phase diagram is of second order, whereas for finite quark masses a crossover is observed. Moreover, if we take into account the influence of quark condensate to the coupling strength (which also provides a possible way of how the effective coupling varies with temperature and quark chemical potential), it is found that a CEP may appear. These findings differ substantially from other NJL results which use alternative regularization schemes, some explanation and discussion are given at the end. This indicates that the regularization scheme can have a dramatic impact on the study of the QCD phase transition within the NJL model.Entities:
Year: 2017 PMID: 28401889 PMCID: PMC5388845 DOI: 10.1038/srep45937
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Dependence of the effective quark masses M as functions of μ for T = 30 MeV.
Figure 2Dependence of the scalar susceptibilities χ as functions of μ for T = 30 MeV, here the result of m =5 MeV is multiplied by 20.
Figure 3Chiral phase diagram based on our model study. As a comparison, the corresponding result of ref. 22 is also shown as the KKI line.
Figure 4Multi-solution of the quark gap equation Eq. (2) with G1 = 0.84 G and T = 0, for the m =5 MeV case. It can be seen clearly that, Nambu and Wigner solutions could coexist between about 252.5 MeV to 256.3 MeV.
Figure 5Chiral phase diagram with G1 = 0.84 G, for the m = 5 MeV case.
Figure 6Sketch comparison of the integrands of the three-momentum cutoff regularization (f3) and our proper time regularization (f), the qualitative behavior not sensitive for the precise values of T and μ.