Thermodynamic potential for quark-gluon plasma with finite quark masses and chemical potential
Mayukh R. Gangopadhyay, Grant J. Mathews, J. Pocahontas Olson

TL;DR
This paper derives a thermodynamic potential for quark-gluon plasma with finite quark masses and chemical potential, incorporating two-loop corrections, and explores its implications for the QCD phase diagram and equation of state.
Contribution
It introduces a method to interpolate two-loop corrections for finite quark masses and chemical potential, improving the modeling of the QCD equation of state in various physical scenarios.
Findings
Two-loop corrections decrease the plasma pressure and increase the critical temperature and chemical potential.
Finite s-quark mass corrections lower the critical temperature for the quark-hadron transition.
Polynomial interpolation effectively reproduces Padé results without spurious poles.
Abstract
We summarize the derivation of the finite temperature, finite chemical potential thermodynamic potential in the bag-model approximation to quantum chromodynamics (QCD) that includes a finite -quark mass in the Feynman diagram contributions for both zero-order and two-loop corrections to the quark interaction. The thermodynamic potential for quarks in QCD is a desired ingredient for computations of the equation of state in the early universe, supernovae, neutron stars, and heavy-ion collisions. The 2-loop contributions are normally divergent and become even more difficult in the limit of finite quark masses and finite chemical potential. We introduce various means to interpolate between the low and high chemical potential limits. Although physically well motivated, we show that the infinite series Pad\'e rational polynomial interpolation scheme introduces spurious poles. Nevertheless,…
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