Cool quark matter with perturbative quark masses
arXiv:2112.11472 · doi:10.1103/PhysRevD.105.114005
Abstract
In perturbative thermal calculations, introducing nonzero quark masses causes considerable complications. In this article we describe an approximation scheme valid for sufficiently light masses which significantly simplifies the relevant calculations with only a small loss in accuracy. We apply the scheme to Quantum Chromodynamics, with two massless and one massive flavor, obtaining analytic results which are in excellent agreement with numerical non-approximated results. Our results are accurate to in the strong coupling parameter , as long as either the chemical potential of the quark species with nonzero mass satisfies or if the temperature satisfies . We find that these conditions are always satisfied for the three lightest quarks for the values of , where Quantum Chromodynamics is perturbatively convergent.
9 pages, 5 figures. Changes from v1: further clarifying text added; figures updated for clarity. Version published in PRD
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