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arXiv · 2205.02995

New physics in $\text{b} \rightarrow \text{s}$ transitions in the MF331 model

Abstract

There are two sources that help to explain the $\text{R}_\text{K}$, $\text{R}_{\text{K}^*}$ anomalies in the MF331 model. The first is non-LFUV couplings of the new neutral gauge boson $\text{Z}^{\prime}$ with leptons, $\text{g}^{\text{Z}^\prime}(e)\neq \text{g}^{\text{Z}^\prime}(μ,τ)$, which causes the $\text{R}_\text{K}$, $\text{R}_{\text{K}^*}$ anomalies via $\text{Z}^\prime$-penguin diagrams involving newly charged gauge bosons $\text{X}^{\pm}_μ$, and exotic U-quarks. The box diagram's contribution is the second source, which induced only the first lepton generation. We show that the penguin diagrams can not explain $\text{R}_\text{K}$, $\text{R}_{\text{K}^*}$ anomalies, and that the box diagram is required. The experimental constraints for $\text{R}_\text{K}$ and $\text{R}_{\text{K}^*}$ result in new particle mass degeneracy. The contributions of NP to the branching ratios $\text{Br}(\text{B}\to μ^+ μ^-), \text{Br}(\text{b}\to s γ)$ predict results that agree with the experimental limits in the allowed region of the NP scale.

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BibTeXRIS

N. T. Duy, P. N. Thu, D. T. Huong. 2022-05-06. New physics in $\text{b} \rightarrow \text{s}$ transitions in the MF331 model. https://doi.org/10.1140/epjc%2Fs10052-022-10916-7

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