Physicists are trying to unify Einstein’s theory of gravity with the quantum rules governing particles, using a framework called M-theory that extends string theory. The problem is that these two descriptions of reality—the very large and the very small—currently contradict each other. This programme tackles that gap by exploring how M-theory connects black holes to quantum field theory, and how it might explain strong forces like those that confine quarks inside protons. The researchers will also analyse gravitational wave data and cosmic microwave background patterns to test modified theories of gravity and search for signs of quantum spacetime. This is fundamental science with no immediate practical application. However, the same kind of theoretical work that once seemed abstract later underpinned technologies like GPS, which relies on corrections from both relativity and quantum effects. If successful, this research could reshape how we understand the universe’s origin, the nature of dark energy, and the behaviour of matter under extreme conditions—insights that might eventually inform everything from materials science to cosmology.
View original technical description
Our STFC research programme investigates the fundamental physics that describes matter, interactions and spacetime, focusing on the interrelated essential ideas of M-theory, quantum field theory and cosmology. M-theory, which subsumes string theory and supergravity theory, is our central approach to unifying Einstein's theory of General Relativity with the Standard Model of particle physics. One of the most remarkable features of M-theory is that it incorporates dual descriptions of non-perturbative Yang-Mills theories in terms of strings and branes, leading to profound connections between black holes and quantum field theory and also to new insights into strong coupling phenomena such as quark confinement. These connections will continue to be explored in a number of different ways, including using supersymmetry, novel geometric constructions, exactly integrable quantum field theory models and theories with massless higher-spin excitations. An ultimate goal is to determine the fundamental degrees of freedom of M-theory which would have profound implications for particle physics phenomenology. Using both analytical and numerical techniques we will construct and study black-hole solutions with novel properties that have important potential applications to both the quark-gluon plasma and poorly understood systems in condensed matter such as high-temperature superconductors, exotic metals and insulators. Cosmology continues to be a highly vibrant area of study driven by a wealth of new data, in particular the recent ground-breaking discovery of gravitational waves. Key clues to the structure and the origin of the universe are to be found in the details of the cosmic microwave background. This will provide one focus of our activities both through analysing data and by studying the cosmological implications of the Higgs field and extensions of the Standard Model of particle physics in inflationary scenarios. A central question we will address is what information can be extracted from new gravity waves measures, in particular how this constrains models of gravity and dark energy. We will look to characterise modified theories of gravity, for instance where the graviton has a mass, and study their cosmological features, and more generally study how to extract imprints of quantum gravity, such as fundamental discreteness of spacetime, on cosmological data. We also continue to develop novel, global statistical tools that draw on many different experiments in order to extract the strongest possible constraints on models.
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