SU(2) Low-Energy Constants from Mixed-Action Lattice QCD
S. R. Beane, W. Detmold, P. M. Junnarkar, T. C. Luu, K. Orginos, A., Parreno, M. J. Savage, A. Torok, A. Walker-Loud

TL;DR
This paper uses mixed-action lattice QCD to determine low-energy constants related to pion properties, analyzing systematic effects and comparing different chiral perturbation theories to improve understanding of QCD at low energies.
Contribution
It provides new constraints on the Gasser-Leutwyler coefficients using mixed-action lattice QCD with systematic error analysis.
Findings
Determined and coefficients with quantified uncertainties.
Found chiral corrections increase f_\u03c6 by about 6%.
Achieved a consistent analysis between different chiral perturbation theory approaches.
Abstract
An analysis of the pion mass and pion decay constant is performed using mixed-action Lattice QCD calculations with domain-wall valence quarks on ensembles of rooted, staggered n_f = 2+1 MILC configurations. Calculations were performed at two lattice spacings of b~0.125 fm and b~0.09 fm, at two strange quark masses, multiple light quark masses, and a number of lattice volumes. The ratios of light quark to strange quark masses are in the range 0.1 <= m_l / m_s <= 0.6, while pion masses are in the range 235 < m_\pi < 680 MeV. A two-flavor chiral perturbation theory analysis of the Lattice QCD calculations constrains the Gasser-Leutwyler coefficients bar{l}_3 and bar{l}_4 to be bar{l}_3 = 4.04(40)(+73-55) and bar{l}_4 = 4.30(51)(+84-60). All systematic effects in the calculations are explored, including those from the finite lattice space-time volume, the finite lattice spacing, and the…
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