The Large Hadron Collider at CERN is about to switch on, and this project will develop the theoretical tools needed to interpret what it finds. Particle physics has reached a point where experiments can finally test the deep mathematical structures—gauge theories and string theory—that might unify the forces of nature. The core problem is that the equations describing fundamental particles are extremely hard to solve, even approximately. Recent breakthroughs have opened new ways to crack them, and this research will push those methods further. It will also use string theory’s AdS/CFT correspondence to translate impossible gravity problems into solvable ones, and model how large numbers of hadrons behave inside nuclei and neutron stars. On the cosmological side, the team will search for observational signatures of “brane” universes moving in higher dimensions. This is fundamental science with no immediate practical application. But the same kind of theoretical work that gave us quantum field theory later underpinned everything from transistors to medical imaging. A deeper understanding of gauge theories and quantum gravity could, over decades, reshape how we compute, communicate, or navigate.
View original technical description
Particle Physics is about to enter a new and crucial phase. The switching on of the Large Hadron Collider at CERN will enable us to examine experimentally many of the theoretical concepts that underly the standard model of particle physics and search for the deeper structures that are believed to unify the laws of physics. Quantum field theory is the mathematical language in which the standard model is expressed, and it treats particles as point-like objects. Only certain kinds of quantum field theories, known as gauge theories, are consistent in the four dimensional world we live in. These include, and are generalisations of, the theory of electrodynamics that describes light interacting with electric charge. To be able to interpret the results of experiments we need to be able to solve gauge theories, at least approximately. This is a hard problem, but one in which there has recently been very remarkable progress due to a convergence of ideas originally developed in quite disparate contexts for solving very different kinds of theories. A major thrust of the project will be to push this line of enquiry further so as to be able to more fully understand gauge theories and be able to compute their properties. Matter at large scales is dominated by gravity which is described by Einstein's theory of General Relativity. This governs the motion of planets, stars, galaxies, and the evolution of the Universe itself. Uniting General Relativity and the standard model of particle physics is the most important challenge facing theoretical physics. It is widely, though not universally, believed that string theory provides such a unification. String theory replaces the point-like particles of quantum field theory with extended objects whose different vibrational modes account for the different species of fundamental particles. It is this belief that leads to the expectation that supersymmetry, a property of all realistic string theories, plays a role in nature, and may well be discovered at the LHC. Showing how nature contrives to hide this property is another part of the project. String theory has also lead to many unexpected relations between different kinds of physical theories, most notably in the AdS/CFT correspondence which states equivalences between certain gravity theories and corresponding gauge theories, enabling us to solve difficult problems in one theory by studying simper ones in the other. We will use this to study problems in gravity that would otherwise be intractable and also model the properties of hadrons by gravity. We will also use another method for studying hadrons that is particularly appropriate to describing large numbers of them bound into nuclei or even neutron stars. This is based on effective field theories such as the Skyrme model which we will investigate numerically using computers. Being a theory of quantum gravity strings have many implications for cosmology, in particular they admit the possibility that what we see as the physical universe is only a low dimensional subspace called a brane, moving in a space of higher dimensions. We will continue the quest to find direct experimental and observational signatures that will test this scenario. Part of the proposed research is to apply the methods of theoretical physics to study problems in biology, for example the self-assembly of viruses into sometimes symmetrical shapes can be studied with the methods physicists use to understand the symmetries of fundamental particles, with a view to possibly controlling this process.
Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.
Is something wrong? Let us know