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Deconfinement critical point of heavy quark effective lattice theories

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arxiv 2112.06505 v2 pith:C5BG7YT4 submitted 2021-12-13 hep-lat

classification hep-lat
keywords effectivehoppingcriticaltheoriescouplingdeconfinementheavykappa
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Effective three-dimensional Polyakov loop theories derived from QCD by strong coupling and hopping expansions are valid for heavy quarks and can also be applied to finite chemical potential $\mu$, due to their considerably milder sign problem. We apply the Monte-Carlo method to the $N_f=1,2$ effective theories up to $\mathcal{O}(\kappa^4)$ in the hopping parameter at $\mu=0$ to determine the critical quark mass, at which the first-order deconfinement phase transition terminates. The critical end point obtained from the effective theory to order $\mathcal{O}(\kappa^2)$ agrees well with 4-dimensional QCD simulations with a hopping expanded determinant by the WHOT-QCD collaboration. We also compare with full QCD simulations and thus obtain a measure for the validity of both the strong coupling and the hopping expansion in this regime.

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  1. From deconfinement to nuclear matter: mean-field approaches for effective Polyakov loop theories of lattice QCD

    hep-lat 2025-09 accept novelty 6.0 of 10

    A resummed mean-field approximation reproduces effective Polyakov loop theory Monte Carlo results at percent level, enabling analytic determination of heavy-quark QCD phase diagrams.

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