The Standard Model of particle physics provides an exceptionally precise description of known elementary particles and their interactions, yet it cannot explain several fundamental phenomena such as the nature of dark matter or the origin of matter-antimatter asymmetry in the Universe. One of the most promising ways to reveal signs of new physics is through high-precision studies of flavour physics, where quarks change type (“flavour”). Experiments in Europe and worldwide are now reaching unprecedented accuracy, and fully exploiting their results requires theoretical predictions of comparable precision.
Lattice QCD is the only first-principles method capable of computing the effects of the strong interaction with systematically improvable uncertainties. As lattice calculations have become increasingly precise, it has become essential to also include contributions that were previously neglected, such as the effects of electromagnetic interactions and strong isospin breaking. Incorporating these corrections consistently is crucial for producing reliable Standard-Model predictions for precision flavour observables.
The SNPF project addressed two central challenges in this area, focusing on objectives that strengthen the theoretical foundations needed to test the Standard Model and to search for signs of new physics:
- Objective 1: Precision determination of |Vus| through lattice QCD+QED calculations.
The aim is to improve the theoretical description of hadronic processes that determine the CKM matrix element |Vus|, a key parameter governing weak interactions and an essential ingredient in tests of CKM unitarity.
- Objective 2: First-principles determination of long-distance contributions to neutral D-meson mixing.
These long-distance effects dominate the theoretical uncertainty in a process highly sensitive to potential contributions from new physics.
Together, these objectives provide more robust theoretical input for interpreting precision flavour experiments and for exploring possible deviations from the Standard Model.