Abstract

We use lattice QCD to calculate the form factors $f_+(q^2)$ and $f_0(q^2)$ for the semileptonic decay $B_s\to K\ell\nu$. Our calculation uses six MILC asqtad 2+1 flavor gauge-field ensembles with three lattice spacings. At the smallest and largest lattice spacing the light-quark sea mass is set to 1/10 the strange-quark mass. At the intermediate lattice spacing, we use four values for the light-quark sea mass ranging from 1/5 to 1/20 of the strange-quark mass. We use the asqtad improved staggered action for the light valence quarks, and the clover action with the Fermilab interpolation for the heavy valence bottom quark. We use SU(2) hard-kaon heavy-meson rooted staggered chiral perturbation theory to take the chiral-continuum limit. A functional $z$ expansion is used to extend the form factors to the full kinematic range. We present predictions for the differential decay rate for both $B_s\to K\mu\nu$ and $B_s\to K\tau\nu$. We also present results for the forward-backward asymmetry, the lepton polarization asymmetry, ratios of the scalar and vector form factors for the decays $B_s\to K\ell\nu$ and $B_s\to D_s \ell\nu$. Our results, together with future experimental measurements, can be used to determine the magnitude of the Cabibbo-Kobayashi-Maskawa matrix element $|V_{ub}|$.

Highlights

  • Since the quarks that participate in the underlying electroweak transition are constituents of bound states, it is necessary to understand the effects of the strong interactions on the decay

  • These effects are encapsulated in form factors for hadronic matrix elements of the weak currents that govern the decay

  • This work is part of a broad study of flavor physics by the Fermilab Lattice and MILC Collaborations to determine a number of CKM matrix elements from semileptonic K [8], DðsÞ [9], and BðsÞ [10,11,12,13,14,15,16,17,18,19] decays using the asqtad 2 þ 1 flavor ensembles generated by the MILC Collaboration [20,21,22]

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Summary

INTRODUCTION

Semileptonic decays of hadrons can be used to determine elements of the Cabibbo-Kobayashi-Maskawa (CKM). This work is part of a broad study of flavor physics by the Fermilab Lattice and MILC Collaborations to determine a number of CKM matrix elements from semileptonic K [8], DðsÞ [9], and BðsÞ [10,11,12,13,14,15,16,17,18,19] decays using the asqtad 2 þ 1 flavor ensembles generated by the MILC Collaboration [20,21,22] These studies are currently being extended [23,24,25,26,27] to use HISQ 2 þ 1 þ 1 flavor ensembles [28,29]. Appendix C contains the binned differential decay rates, as well as the full correlation matrices

MATRIX ELEMENTS AND FORM FACTORS
LATTICE-QCD CALCULATION
Definitions
Actions and parameters
ANALYSIS
Analysis of the two-point correlation functions
Extracting form factors from two- and three-point correlation functions
Heavy bottom quark mass correction
Chiral-continuum extrapolation
E c1P3χ
SYSTEMATIC ERROR ESTIMATIONS
Chiral-continuum extrapolation errors
Lattice-scale uncertainties
Current renormalization uncertainties
Uncertainties arising from the bottom quark mass correction
Finite volume effects
Summary of the statistical and systematic error budgets
CONTINUUM FORM FACTORS
Comparison with existing results
PHENOMENOLOGICAL APPLICATIONS
Decay rate
Forward-backward asymmetry
Lepton polarization asymmetry
Comparison with prior results
VIII. SUMMARY AND OUTLOOK
Reconstructing the form factors as functions of z
Reconstructing the form factors as functions of q2
Findings
Dealing with the near zero eigenvalue in the covariance matrix

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