Completed Physics & Astronomy Mathematics & Statistics

Particle Theory at the Higgs Centre

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The Higgs Centre for Theoretical Physics in Edinburgh is calculating the precise signatures of known and hypothetical particles to help the Large Hadron Collider distinguish a genuine discovery from a mundane background event. This matters because particle physics stands at a crossroads. The 2012 discovery of the Higgs boson completed the Standard Model, but the model remains incomplete—it cannot explain dark matter, gravity at quantum scales, or why the universe has the structure it does. Without better theoretical calculations, the LHC’s new high-energy data could hide subtle signs of new physics in a fog of known processes. If the group’s calculations succeed, they will sharpen the LHC’s ability to detect deviations from the Standard Model, potentially revealing new particles or forces. At the same time, their work on string theory and supergravity aims to reconcile quantum field theory with general relativity—a fundamental problem with no immediate practical application. But past fundamental research into quantum mechanics and relativity gave us transistors, GPS, and medical imaging. A deeper mathematical understanding of nature’s forces could, decades from now, underpin technologies no one has yet imagined.

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There are two types of fundamental forces in Nature: those responsible for particle interactions at subatomic scales and those responsible for the large scale structure of the universe. The former is described by Quantum Field Theories (QFT) such as the Standard Model(SM). Currently, our understanding of Nature at the most fundamental level is at the crossroads. In 2012, the LHC at CERN collided protons at higher energies than ever before, and observed sufficient collisions to find a significant excess at 125 GeV, consistent with the Higgs boson of the SM. Over the last three years it has become evident that this is indeed a SM Higgs, responsible for generating masses for vector bosons, leptons and quarks. Currently data at even higher energies is being taken at LHC, and it should soon become clearer whether there is more physics at the TeV scale, or whether we need to build machines capable of going to even higher energies. At large scales the European Planck satellite has given the most precise measurements of the cosmic microwave background (CMB) and it is an open question to determine the particle physics model best capable of describing the physics underlying the large scale properties of the Universe. Thus at both small and large scales, this is a transformative time in fundamental physics. Our programme of research at the Higgs Centre for Theoretical Physics in Edinburgh is designed to be at the forefront of these new discoveries: indeed Peter Higgs himself is Emeritus Professor here. Specifically, we provide theoretical calculations, using pen and paper, and the most powerful supercomputers, of both the huge number of background processes to be seen at LHC due to known physics, and the tiny signals expected in various models of new physics, in order to discriminate between signal and background, and thus maximise the discovery potential of the LHC. In parallel, we will attempt to understand the more complete picture of all the forces of Nature that may begin to emerge. The fundamental force responsible for large scale structure is described Einstein's General Theory of Relativity (GR). During the last three decades, string theory has emerged as a conceptually rich theoretical framework reconciling both GR and QFT. The low-energy limit of String Theory is supergravity (SUGRA), a nontrivial extension of GR in which the universe is described by a spacetime with additional geometric data. Members of the group have pioneered approaches to deriving observable cosmological consequences of String Theory, to studying how the geometrical notions on which GR is predicated change at very small ("stringy") distance scales, and the systematic classification of SUGRA backgrounds. The group is also engaged in using these theories to improve calculations in existing field theories. In summary, our research will impinge on both theoretical and computational aspects relevant to probing the phenomenology of incoming LHC data, and will also encompass a wide range of topics in QFT and gravitational aspects of String Theory, impinging on cosmology, particle physics and on the very nature of String Theory itself.

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Researchers

Anthony Kennedy (Co-Investigator)Arjun Berera (Co-Investigator)Donal O'Connell (Co-Investigator)Einan Gardi (Co-Investigator)Harry Braden (Co-Investigator)James Lucietti (Co-Investigator)Jennifer Smillie (Co-Investigator)Joan Simon (Co-Investigator)José Miguel Figueroa-O'Farrill (Co-Investigator)Luigi Del Debbio (Co-Investigator)Peter Boyle (Co-Investigator)Richard Ball (Principal Investigator)Richard Kenway (Co-Investigator)Roger Horsley (Co-Investigator)Roman Zwicky (Co-Investigator)Simon Badger (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Particle Theory at the Tait Institute
The Standard Model and Beyond
New Horizons in Quantum Field Theory, Particle Physics and String Phenomenology
New Frontiers in Particle Physics, Cosmology and Gravity
Investigations in Theoretical Particle Physics

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