B- and D-meson decay constants from three-flavor lattice QCD
A. Bazavov, C. Bernard, C. M. Bouchard, C. DeTar, M. Di Pierro, A. X., El-Khadra, R. T. Evans, E. D. Freeland, E. Gamiz, Steven Gottlieb, U. M., Heller, J. E. Hetrick, R. Jain, A. S. Kronfeld, J. Laiho, L. Levkova, P. B., Mackenzie, E. T. Neil, M. B. Oktay, J. N. Simone

TL;DR
This paper presents lattice QCD calculations of B and D meson decay constants using three-flavor simulations, providing precise results that are crucial for understanding weak decays and testing the Standard Model.
Contribution
The study introduces a comprehensive lattice QCD approach with multiple lattice spacings and sea quark masses, improving the precision of heavy-light meson decay constants.
Findings
Calculated decay constants with uncertainties around 4-5%.
Provided ratios of decay constants to test SU(3) flavor symmetry.
Demonstrated effective renormalization methods reducing systematic errors.
Abstract
We calculate the leptonic decay constants of B_{(s)} and D_{(s)} mesons in lattice QCD using staggered light quarks and Fermilab bottom and charm quarks. We compute the heavy-light meson correlation functions on the MILC asqtad-improved staggered gauge configurations which include the effects of three light dynamical sea quarks. We simulate with several values of the light valence- and sea-quark masses (down to ~m_s/10) and at three lattice spacings (a ~ 0.15, 0.12, and 0.09 fm) and extrapolate to the physical up and down quark masses and the continuum using expressions derived in heavy-light meson staggered chiral perturbation theory. We renormalize the heavy-light axial current using a mostly nonperturbative method such that only a small correction to unity must be computed in lattice perturbation theory and higher-order terms are expected to be small. We obtain f_{B^+} = 196.9(8.9)…
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