The Standard Model (SM) of particle physics is one of the most complete theories in science with a hugely successful predicting power. However, it is unable to explain critical observed phenomena, such as the dominance of matter over antimatter in the universe, and consequently needs to be extended.
Rare decays of b quarks, one of the heaviest quarks that form matter, are very suppressed in the SM. They are very sensitive to the existence of new particles or forces, generically referred to as New Physics (NP), that could change the properties of these decays. Recent measurements of the properties of rare b-quark decays to an s quark and two leptons (b→sℓ+ℓ−) show intriguing deviations with respect to the SM predictions that could be a hint of NP. In this project, we will explore the related and even more suppressed b-quark decays to a d quark and two leptons (b→dℓ+ℓ−), which are so far poorly known and even more sensitive to the existence of NP. Precise measurements of b→dℓ+ℓ− decays have the potential of shedding light on the existence of NP and its type, in combination with the existing measurements in b→sℓ+ℓ− processes.
For this purpose, we will develop innovative analysis tools and exploit the uniquely large sample of b hadrons from the LHCb experiment. The CLIMB project will address two specific questions:
1. Are the deviations observed in b→sℓ+ℓ− decays also present in b→dℓ+ℓ− transitions? This will be addressed by measuring differential decay probabilities and lepton universality ratios in b→dℓ+ℓ− decays for the first time. In the SM, b→sℓ+ℓ− and b→dℓ+ℓ− decays are related by the so-called quark-mixing matrix, the hierarchy of which is not fully understood. Some NP models aim to provide an explanation for the structure observed in nature. Knowing the properties of b→dℓ+ℓ− decays precisely is a critical input in this endeavour.
2. Are there new sources of matter-antimatter asymmetry beyond the SM in b→dℓ+ℓ− processes? This will be answered by measuring matter-antimatter asymmetries in b→dℓ+ℓ− decays with unprecedented precision, providing very strong constraints to NP models predicting an enhanced amount.
The main challenge of this programme lies in the study of very suppressed decays. Innovative reconstruction and selection techniques will be developed to access them.