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Lattice QCD at the physical point meets SU(2) chiral perturbation theory

Authors :
Durr, Stephan
Fodor, Zoltan
Hoelbling, Christian
Krieg, Stefan
Kurth, Thorsten
Lellouch, Laurent
Lippert, Thomas
Malak, Rehan
Metivet, Thibaut
Portelli, Antonin
Sastre, Alfonso
Szabo, Kalman
Source :
Phys. Rev. D 90, 114504 (2014)
Publication Year :
2013

Abstract

We perform a detailed, fully-correlated study of the chiral behavior of the pion mass and decay constant, based on 2+1 flavor lattice QCD simulations. These calculations are implemented using tree-level, O(a)-improved Wilson fermions, at four values of the lattice spacing down to 0.054 fm and all the way down to below the physical value of the pion mass. They allow a sharp comparison with the predictions of SU(2) chiral perturbation theory (\chi PT) and a determination of some of its low energy constants. In particular, we systematically explore the range of applicability of NLO SU(2) \chi PT in two different expansions: the first in quark mass (x-expansion), and the second in pion mass (\xi-expansion). We find that these expansions begin showing signs of failure around M_\pi=300 MeV for the typical percent-level precision of our N_f=2+1 lattice results. We further determine the LO low energy constants (LECs), F=88.0 \pm 1.3\pm 0.3 and B^\msbar(2 GeV)=2.58 \pm 0.07 \pm 0.02 GeV, and the related quark condensate, \Sigma^\msbar(2 GeV)=(271\pm 4\pm 1 MeV)^3, as well as the NLO ones, l_3=2.5 \pm 0.5 \pm 0.4 and l_4=3.8 \pm 0.4 \pm 0.2, with fully controlled uncertainties. We also explore the NNLO expansions and the values of NNLO LECs. In addition, we show that the lattice results favor the presence of chiral logarithms. We further demonstrate how the absence of lattice results with pion masses below 200 MeV can lead to misleading results and conclusions. Our calculations allow a fully controlled, ab initio determination of the pion decay constant with a total 1% error, which is in excellent agreement with experiment.

Details

Database :
arXiv
Journal :
Phys. Rev. D 90, 114504 (2014)
Publication Type :
Report
Accession number :
edsarx.1310.3626
Document Type :
Working Paper
Full Text :
https://doi.org/10.1103/PhysRevD.90.114504