Chiral matrix model of the semi-Quark Gluon Plasma in QCD
Robert D. Pisarski, Vladimir V. Skokov

TL;DR
This paper develops a chiral matrix model for QCD with 2+1 flavors, integrating scalar fields and quarks, to study the chiral crossover and deconfinement transition, showing good agreement with lattice results and insights into susceptibility behavior.
Contribution
The paper introduces a novel chiral matrix model incorporating scalar fields and quarks, providing a unified framework to analyze chiral and deconfinement transitions in QCD.
Findings
The model accurately reproduces lattice QCD pressure results.
It predicts a divergence in chiral susceptibility at T_chi.
Susceptibilities like chi_4 - chi_2 change sign around T_chi.
Abstract
A chiral matrix model applicable to QCD with 2+1 flavors is developed. This requires adding a SU(3)_L x SU(3)_R x Z(3)_A nonet of scalar fields, with both parities, and coupling these to quarks through a Yukawa coupling, y. Treating the scalar fields in mean field approximation, the effective Lagrangian is computed by integrating out quarks to one loop order. In addition to the usual symmetry breaking term, linear in the current quark mass m_qk, at a nonzero temperature T it is necessary to add a new term, ~ m_qk T^2. The parameters of the gluon part of the matrix model are identical to that for the pure glue theory without quarks. The parameters in the chiral matrix model are fixed by the values, at zero temperature, of the pion decay constant and the masses of the pions, kaons, eta, and eta'. The temperature for the chiral crossover at T_chi = 155 MeV is determined by adjusting the…
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