Curvature of the chiral phase transition line from the magnetic equation of state of ( 2+1 )-flavor QCD

Author:

Ding H.-T.1ORCID,Kaczmarek O.2ORCID,Karsch F.2ORCID,Petreczky P.3ORCID,Sarkar Mugdha4ORCID,Schmidt C.2ORCID,Sharma Sipaz2ORCID

Affiliation:

1. Central China Normal University

2. Universität Bielefeld

3. Brookhaven National Laboratory

4. National Taiwan University

Abstract

We analyze the dependence of the chiral phase transition temperature on baryon number and strangeness chemical potentials by calculating the leading order curvature coefficients in the light and strange quark flavor basis as well as in the conserved charge (B, S) basis. Making use of scaling properties of the magnetic equation of state (MEoS) and including diagonal as well as off-diagonal contributions in the expansion of the energylike scaling variable that enters the parametrization of the MEoS, allows to explore the variation of Tc(μB,μS)=Tc(1(κ2Bμ^B2+κ2Sμ^S2+2κ11BSμ^Bμ^S)) along different lines in the (μB,μS) plane. On lattices with fixed cutoff in units of temperature, aT=1/8, we find κ2B=0.015(1), κ2S=0.0124(5) and κ11BS=0.0050(7). We show that the chemical potential dependence along the line of vanishing strangeness chemical potential is about 10% larger than along the strangeness neutral line. The latter differs only by about 3% from the curvature on a line of vanishing strange quark chemical potential, μs=0. We also show that close to the chiral limit the strange quark mass contributes like an energylike variable in scaling relations for pseudocritical temperatures. The chiral phase transition temperature decreases with decreasing strange quark mass, Tc(ms)=Tc(msphy)(10.097(2)(msmsphys)/msphy+O((Δms)2). Published by the American Physical Society 2024

Funder

Deutsche Forschungsgemeinschaft

National Science and Technology Council

National Natural Science Foundation of China

National Key Research and Development Program of China

U.S. Department of Energy

Office of Science

Nuclear Physics

Centro Svizzero di Calcolo Scientifico

Universität Bielefeld

Central China Normal University

Thomas Jefferson National Accelerator Facility

Publisher

American Physical Society (APS)

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