The theory behind fundamental interactions among elementary particles is based on a rich mathematical framework, Quantum Field Theory (QFT). Despite more than six decades of work by physicists all over the world, many mysteries remain in the inner workings of QFT, in particular for what concerns its mathematical foundations. Unravelling these mysteries would, on the one hand, provide us with a new understanding of fundamental physics, and on the other it has the potential to provide new computational tools to address high precision calculations for particle colliders. This, in turn, will make it possible to exploit at best the enormous data sets produced by the Large Hadron Collider at CERN (LHC), and also by future colliders that will take its place, to explore fundamental interactions experimentally to the highest energy scales available.
The overall objective of this project are to advance the state of the art in theoretical particle physics, by taking a detour through pure mathematics: by building upon results on geometrical properties of complex hyper-surfaces, which are multidimensional surfaces with special mathematical properties, we are exploring new ways to obtain results for physical quantities, whose calculation till few years ago was considered out of reach due to their extreme complexity. We are developing new tools, mainly based on geometry and computer algebra, to compute previously out-of-reach processes and make precise predictions for important processes, which in turn can tell us more about how elementary particles interact and how their mass is generated through their interaction with the newly discovered Higgs boson. This has the potential to furnish a piece towards the solution of the complex puzzle that is at the basis of the origin of matter in the universe.