Abstract

We calculate the mass difference between the $\mathrm{\ensuremath{\Upsilon}}$ and ${\ensuremath{\eta}}_{b}$ and the $\mathrm{\ensuremath{\Upsilon}}$ leptonic width from lattice QCD using the highly improved staggered quark formalism for the $b$ quark and including $u$, $d$, $s$ and $c$ quarks in the sea. We have results for lattices with lattice spacing as low as 0.03 fm and multiple heavy quark masses, enabling us to map out the heavy quark mass dependence and determine values at the $b$ quark mass. Our results are ${M}_{\mathrm{\ensuremath{\Upsilon}}}\ensuremath{-}{M}_{{\ensuremath{\eta}}_{b}}=57.5(2.3)(1.0)\text{ }\text{ }\mathrm{MeV}$ (where the second uncertainty comes from neglect of quark-line disconnected correlation functions) and decay constants, ${f}_{{\ensuremath{\eta}}_{b}}=724(12)\text{ }\text{ }\mathrm{MeV}$ and ${f}_{\mathrm{\ensuremath{\Upsilon}}}=677.2(9.7)\text{ }\text{ }\mathrm{MeV}$, giving $\mathrm{\ensuremath{\Gamma}}(\mathrm{\ensuremath{\Upsilon}}\ensuremath{\rightarrow}{e}^{+}{e}^{\ensuremath{-}})=1.292(37)(3)\text{ }\text{ }\mathrm{keV}$. The hyperfine splitting and leptonic width are both in good agreement with experiment, and provide the most accurate lattice QCD results to date for these quantities by some margin. At the same time results for the time moments of the vector-vector correlation function can be compared to values for the $b$ quark contribution to $\ensuremath{\sigma}({e}^{+}{e}^{\ensuremath{-}}\ensuremath{\rightarrow}\text{hadrons})$ determined from experiment. Moments 4--10 provide a 2% test of QCD and yield a $b$ quark contribution to the anomalous magnetic moment of the muon of $0.300(15)\ifmmode\times\else\texttimes\fi{}{10}^{\ensuremath{-}10}$. Our results, covering a range of heavy quark masses, may also be useful to constrain QCD-like composite theories for beyond the Standard Model physics.

Highlights

  • Weak decay matrix elements calculated in lattice QCD are critical to the flavor physics program of overdetermining the Cabibbo-Kobayashi-Maskawa (CKM) matrix to find signs of new physics

  • The fit parameters required to reproduce the physical curve of the hyperfine splitting as a function of Mφh plotted in Fig. 1 are given in Table IX of the Appendix

  • The fit parameters required to reproduce these physical curves of the decay constants as a function of Mφh are given in Table X of the Appendix

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Summary

INTRODUCTION

Weak decay matrix elements calculated in lattice QCD are critical to the flavor physics program of overdetermining the Cabibbo-Kobayashi-Maskawa (CKM) matrix to find signs of new physics. This makes the action good for heavier quarks when discretization errors appear as powers of the quark mass in lattice units, which can be relatively large This action enabled the first accurate lattice calculations in charm physics [5,6,7,8]. We can map out the dependence on the heavy quark mass of both the quantity being calculated and its discretization errors This enables us to determine a physical result at the b quark mass. As we will show below, this enables us to improve the lattice QCD accuracy on the bottomonium hyperfine splitting to better than 5% and to achieve percent-level precision on the Υ and ηb decay constants and on moments that parametrize the b quark contribution to Rðeþe− → hadronsÞ.

LATTICE CALCULATION
A F0ðMφh Þ þ
HYPERFINE SPLITTING
Discussion
Υ AND ηb DECAY CONSTANTS
VECTOR CURRENT-CURRENT CORRELATOR TIME MOMENTS AND abμ
CONCLUSIONS
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