English

$R_{D^{(\ast)}}$ in custodial warped space

High Energy Physics - Phenomenology 2018-12-26 v3 High Energy Physics - Experiment

Abstract

Flavor physics experiments allow to probe the accuracy of the Standard Model (SM) description at low energies, and are sensitive to new heavy gauge bosons that couple to quarks and leptons in a relevant way. The apparent anomaly in the ratios of the decay of BB-mesons into DD-mesons and different lepton flavors, RD()=B(BD()τν)/B(BD()ν)R_{D^{(\ast)}} = \mathcal B(B \to D^{(\ast)} \tau \nu)/ \mathcal B(B \to D^{(\ast)} \ell \nu ) is particularly intriguing, since these decay processes occur at tree-level in the SM. Recently, it has been suggested that this anomaly may be explained by new gauge bosons coupled to right-handed currents of quarks and leptons, involving light right-handed neutrinos. In this work we present a well-motivated ultraviolet complete realization of this idea, embedding the SM in a warped space with an SU(2)LSU(2)RU(1)BLSU(2)_L \otimes SU(2)_R \otimes U(1)_{B-L} bulk gauge symmetry. Besides providing a solution to the hierarchy problem, we show that this model, which has an explicit custodial symmetry, can explain the RD()R_{D^{(\ast)}} anomaly and at the same time allow for a solution to the RK()R_{K^{(\ast)}} anomalies, related to the decay of BB-mesons into KK-mesons and leptons, RK()=B(BK()μμ)/B(BK()ee)R_{K^{(*)}} = \mathcal B(B\to K^{(*)} \mu \mu)/ \mathcal B(B \to K^{(*)} e e). In addition, a model prediction is an anomalous value of the forward-backward asymmetry AFBbA^b_{FB}, driven by the ZbˉRbRZ\bar b_R b_R coupling, in agreement with LEP data.

Keywords

Cite

@article{arxiv.1809.01107,
  title  = {$R_{D^{(\ast)}}$ in custodial warped space},
  author = {Marcela Carena and Eugenio Megias and Mariano Quiros and Carlos Wagner},
  journal= {arXiv preprint arXiv:1809.01107},
  year   = {2018}
}

Comments

43 pages, 12 figures, 1 table; v2 added references; v3 typos removed and added references. It matches the version published in Journal of High Energy Physics

R2 v1 2026-06-23T03:54:04.135Z