$B^0_{(s)}$-mixing matrix elements from lattice QCD for the Standard Model and beyond
A. Bazavov, C. Bernard, C. M. Bouchard, C. C. Chang, C. DeTar, Daping, Du, A. X. El-Khadra, E. D. Freeland, E. Gamiz, Steven Gottlieb, U. M. Heller,, A. S. Kronfeld, J. Laiho, P. B. Mackenzie, E. T. Neil, J. Simone, R. Sugar,, D. Toussaint, R. S. Van de Water, Ran Zhou

TL;DR
This paper presents the first three-flavor lattice QCD calculation of all five operators relevant to neutral B-meson mixing, providing precise matrix elements, bag parameters, and CKM matrix element constraints that impact tests of the Standard Model and beyond.
Contribution
It offers the most precise lattice QCD determination of B-meson mixing matrix elements and CKM parameters, including correlations and error analysis, advancing beyond previous results.
Findings
Most precise SU(3)-breaking ratio $\xi$ to date.
Reduced uncertainties tighten CKM unitarity constraints.
Results suggest a 2$\sigma$ tension with CKM unitarity expectations.
Abstract
We calculate---for the first time in three-flavor lattice QCD---the hadronic matrix elements of all five local operators that contribute to neutral - and -meson mixing in and beyond the Standard Model. We present a complete error budget for each matrix element and also provide the full set of correlations among the matrix elements. We also present the corresponding bag parameters and their correlations, as well as specific combinations of the mixing matrix elements that enter the expression for the neutral -meson width difference. We obtain the most precise determination to date of the SU(3)-breaking ratio , where the second error stems from the omission of charm sea quarks, while the first encompasses all other uncertainties. The threefold reduction in total uncertainty, relative to the 2013 Flavor Lattice Averaging Group results, tightens the…
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