$B \to \pi \ell \nu$ and $B_s \to K \ell \nu$ form factors and $|V_{ub}|$ from 2+1-flavor lattice QCD with domain-wall light quarks and relativistic heavy quarks
J. M. Flynn, T. Izubuchi, T. Kawanai, C. Lehner, A. Soni, and R. S. Van de Water, O. Witzel

TL;DR
This paper computes $B o \pi \\ell u$ and $B_s o K \\ell u$ form factors using 2+1-flavor lattice QCD with domain-wall light quarks and relativistic heavy quarks, providing key inputs for CKM matrix element $|V_{ub}|$ determination.
Contribution
It presents the first simultaneous lattice QCD calculation of these form factors with multiple lattice spacings and light-quark masses, including comprehensive error analysis and model-independent $z$-parameterization.
Findings
Form factors $f_+(q^2)$ and $f_0(q^2)$ are provided with error budgets.
Extracted $|V_{ub}|$ value: 3.61(32) x 10^{-3}.
Predicted differential branching fractions and asymmetries for future experiments.
Abstract
We calculate the and form factors in dynamical lattice QCD. We use the (2+1)-flavor RBC-UKQCD gauge-field ensembles generated with the domain-wall fermion and Iwasaki gauge actions. For the quarks we use the anisotropic clover action with a relativistic heavy-quark interpretation. We analyze two lattice spacings fm and unitary pion masses as light as MeV. We simultaneously extrapolate our numerical results to the physical light-quark masses and to the continuum and interpolate in the pion/kaon energy using SU(2) "hard-pion" chiral perturbation theory. We provide complete error budgets for the form factors and at three momenta that span the range accessible in our numerical simulations. We extrapolate these results to using a model-independent -parametrization…
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Taxonomy
TopicsQuantum Chromodynamics and Particle Interactions · Particle physics theoretical and experimental studies · High-Energy Particle Collisions Research
