Probing new physics in class-I $B$-meson decays into heavy-light final states
Abstract
With updated experimental data and improved theoretical calculations, several significant deviations are being observed between the Standard Model predictions and the experimental measurements of the branching ratios of decays, where is a light meson from the set . Especially for the two channels and , both of which are free of the weak annihilation contribution, the deviations observed can even reach 4-5. Here we exploit possible new-physics effects in these class-I non-leptonic -meson decays within the framework of QCD factorization. Firstly, we perform a model-independent analysis of the effects from twenty linearly independent four-quark operators that can contribute, either directly or through operator mixing, to the quark-level transitions. It is found that, under the combined constraints from the current experimental data, the deviations observed could be well explained at the level by the new-physics four-quark operators with structure, and also at the level by the operators with and structures. However, the new-physics four-quark operators with other Dirac structures fail to provide a consistent interpretation, even at the level. Then, as two specific examples of model-dependent considerations, we discuss the case where the new-physics four-quark operators are generated by either a colorless charged gauge boson or a colorless charged scalar, with their masses fixed both at the ~TeV. Constraints on the effective coefficients describing the couplings of these mediators to the relevant quarks are obtained by fitting to the current experimental data.
Keywords
Cite
@article{arxiv.2103.04138,
title = {Probing new physics in class-I $B$-meson decays into heavy-light final states},
author = {Fang-Min Cai and Wei-Jun Deng and Xin-Qiang Li and Ya-Dong Yang},
journal= {arXiv preprint arXiv:2103.04138},
year = {2021}
}
Comments
49 pages, 21 figures, and 7 tables; v2: typos corrected, parts of the plots updated; v3: estimation of annihilation contributions and more discussions added, final version published in JHEP