TY - JOUR
T1 - Staggered rooting and unphysical phases at finite baryon density
AU - Borsányi, Szabolcs
AU - Fodor, Zoltán
AU - Giordano, Matteo
AU - Guenther, Jana N.
AU - Katz, Sándor D.
AU - Pásztor, Attila
AU - Wong, Chik Him
N1 - Publisher Copyright:
© Copyright owned by the author(s) under the terms of the Creative Commons.
PY - 2024/11/6
Y1 - 2024/11/6
N2 - Research on the QCD phase diagram with lattice field theory methods is dominated by the use of rooted staggered fermions, as they are the computationally cheapest discretization available. We show that rooted staggered fermions at a nonzero baryochemical potential μB predict a sharp rise in the baryon density at low temperatures and μB & 3mπ/2, where mπ is the Goldstone pion mass. We elucidate the nature of the non-analyticity behind this sharp rise in the density by a comparison of reweighting results with a Taylor expansion of high order. While at first sight this non-analytic behavior becomes apparent at the same position where the pion condensation transition takes place in the phase-quenched theory, but the nature of the non-analyticity in the two theories appears to be quite different: While at nonzero isospin density the data are consistent with a genuine thermodynamic (branch-point) singularity, the results at nonzero baryon density point to an essential singularity at μB = 0. The effect is absent for four flavors of degenerate quarks, where rooting is not used. For the two-flavor case, we show numerical evidence that the magnitude of the effect diminishes on finer lattices. We discuss the implications of this technical complication on future studies of the QCD phase diagram. This work is based on our publication [1].
AB - Research on the QCD phase diagram with lattice field theory methods is dominated by the use of rooted staggered fermions, as they are the computationally cheapest discretization available. We show that rooted staggered fermions at a nonzero baryochemical potential μB predict a sharp rise in the baryon density at low temperatures and μB & 3mπ/2, where mπ is the Goldstone pion mass. We elucidate the nature of the non-analyticity behind this sharp rise in the density by a comparison of reweighting results with a Taylor expansion of high order. While at first sight this non-analytic behavior becomes apparent at the same position where the pion condensation transition takes place in the phase-quenched theory, but the nature of the non-analyticity in the two theories appears to be quite different: While at nonzero isospin density the data are consistent with a genuine thermodynamic (branch-point) singularity, the results at nonzero baryon density point to an essential singularity at μB = 0. The effect is absent for four flavors of degenerate quarks, where rooting is not used. For the two-flavor case, we show numerical evidence that the magnitude of the effect diminishes on finer lattices. We discuss the implications of this technical complication on future studies of the QCD phase diagram. This work is based on our publication [1].
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M3 - Conference article
AN - SCOPUS:85210020823
SN - 1824-8039
VL - 453
JO - Proceedings of Science
JF - Proceedings of Science
M1 - 166
T2 - 40th International Symposium on Lattice Field Theory, LATTICE 2023
Y2 - 31 July 2023 through 4 August 2023
ER -