arXiv:2510.18138·v1·High Energy Physics — Phenomenology
Theoretical Aspects of Decays
Abstract
Flavor-changing neutral current decays such as are highly suppressed in the Standard Model (SM) and therefore provide sensitive tests for new physics. Persistent tensions between SM predictions and experimental results in branching ratios and angular observables can be explained by a shift of the Wilson coefficient of the effective operator by relative to the SM value. This shift could arise from a non-standard short-distance contribution or from an inaccurate description of long-distance dynamics, particularly charm rescattering contributions. We therefore investigate charm rescattering contributions in using a model of fundamental hadronic degrees of freedom inspired by heavy-hadron chiral perturbation theory and improved by appropriate form factors as well as experimental data. Our analysis shows that such effects, with a high degree of fine-tuning, could shift by , at the cost of introducing a more pronounced dependence, whereas experimental data are consistent with a -independent shift of with the current experimental uncertainties. In the most natural scenario, we find these effects to be of the order of . Connections with other flavor anomalies further illustrate the strong discovery potential of modes.
Comments: Proceedings for the Thirteenth Annual Large Hadron Collider Physics (LHCP2025), 5-9 May 2025, Taipei