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Constraint on the branching ratio of B_c to tau nu from LEP1 and consequences for R(D(*)) anomaly

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arxiv 1708.04072 v2 pith:VNZE5IPS submitted 2017-08-14 hep-ph

Constraint on the branching ratio of B_c to tau nu from LEP1 and consequences for R(D(*)) anomaly

classification hep-ph
keywords constraintdataaloneanomalybeenbranchingorderpeak
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Recently there has been interest in the correlation between R(D*) and the branching ratio (BR) of $B_c \to \tau \nu$ in models with a charged scalar H^\pm. Any enhancement of R(D*) by $H^\pm$ alone (in order to agree with current data) also enhances $BR(B_c \to \tau \nu$), for which there has been no direct search at hadron colliders. We show that LEP data taken at the Z peak requires BR($B_c \to \tau \nu$) < 10%, and this constraint is significantly stronger than the recent constraint BR($B_c \to \tau \nu$) < 30% from considering the lifetime of B_c. In order to respect this new constraint, any explanation of the R(D) and R(D*) anomaly in terms of $H^\pm$ alone would require the future measurements of R(D*) to be even closer to the Standard Model prediction. A stronger limit on BR($B_c \to \tau \nu$) (or its first measurement) would be obtained if the L3 collaboration used all its data taken at the Z peak.

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Cited by 1 Pith paper

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  1. The effects of a scalar singlet Leptoquark at the $Z$ factory

    hep-ph 2026-03 conditional novelty 5.0

    A scalar singlet leptoquark that explains B-meson anomalies produces a ~0.7% decrease in Z→τ+τ−, which future Z-factory measurements could detect, while Z→μ+μ− is essentially unchanged.