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Numerical Study of the Roberge-Weiss Transition

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arxiv 2203.06159 v4 pith:5NZBICGP submitted 2022-03-11 hep-lat

classification hep-lat
keywords densitytransitionphasequarkroberge-weisscanonicaldemonstratefunction
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abstract

We study the Roberge-Weiss phase transition numerically. The phase transition is associated with the discontinuities in the quark-number density at specific values of imaginary quark chemical potential. We parameterize the quark number density $\rho_q$ by the polynomial fit function to compute the canonical partition functions. We demonstrate that this approach provides a good framework for analyzing lattice QCD data at finite density and a high temperature. We show numerically that at high temperature, the Lee-Yang zeros lie on the negative real semi-axis provided that the high-quark-number contributions to the grand canonical partition function are taken into account. These Lee-Yang zeros have nonzero linear density, which signals the Roberge-Weiss phase transition. We demonstrate that this density agrees with the quark density discontinuity at the transition line.

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Cited by 1 Pith paper

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  1. The Equation of State and Multiparticle Production

    hep-ph 2024-11 conditional novelty 5.0 of 10

    The paper proposes that net-baryon number fluctuations in LHC heavy-ion collisions freeze out at an early, high-temperature stage and may come from sea quarks.

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