Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5494351 | Nuclear Physics B | 2017 | 13 Pages |
Abstract
There has been a steady interest in flavor anomalies and their global fits as ideal probes of new physics. If the anomalies are real, one promising explanation is a new Zâ² gauge boson with a flavor-changing coupling to bottom and strange quarks and a flavor-conserving coupling to muons and, possibly, electrons. We point out that direct production of such a Zâ², emerging from the collision of b and s quarks, may offer a complementary window into these phenomena because collider searches already provide competitive constraints. On top of that, we analyze the same Zâ² scenario in relation to another long-standing discrepancy between theory and experiment that concerns the anomalous magnetic moment of the muon. By scanning the allowed Zâ² coupling strengths in the low-mass region, we assess the compatibility of the signals from LHCb with the Zâ² searches in the high energy LHC data and the measurements of the anomalous magnetic moments of the involved leptons. We also argue that observations of the latter can break the degeneracy pattern in the Wilson coefficients C9 and C10 presented by LHCb data. The Zâ² model we consider is compatible with the new measurement of RKâ, therefore it can potentially account for the long-standing deviations observed in B-physics.
Related Topics
Physical Sciences and Engineering
Mathematics
Mathematical Physics
Authors
Stefano Di Chiara, Andrew Fowlie, Sean Fraser, Carlo Marzo, Luca Marzola, Martti Raidal, Christian Spethmann,