Particle physicists at UCL are smashing subatomic particles together and building giant detectors in Antarctic ice to answer how the universe came to allow life. The research addresses a fundamental gap in knowledge: why the universe is made of matter rather than equal parts matter and antimatter, and how particles acquire mass. The team will study the Higgs boson, probe the properties of nearly massless neutrinos, and search for rare processes such as a muon spontaneously converting into an electron. They are also developing new accelerator and detector technologies for future experiments. This is fundamental science with no immediate practical application. However, the technical challenges involved—precision detectors, high-speed electronics, and software capable of analysing vast datasets—stimulate technological developments that can be applied to nuclear medicine, security, and instrument manufacturing. The grant underpins the skilled research and technical staff who train PhD students and post-doctoral researchers, ensuring continuity of expertise that makes this work possible.
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Experimental particle physics studies extremely small sizes, or equivalently extremely high energies. We are seeking to understand the underlying nature of the physical universe in terms of fundamental forces and particles to answer the simple question: how did our universe evolve to allow life. Experiments capable of reaching these extremes of energy & size are very technically demanding. The challenges include devising precision detectors which can operate in hostile environments, particle accelerators which can collide beams at very high energies, super-sensitive detectors capable of identifying very rare decays, high-speed electronics which can read out millions of pieces of information per second & software which can analyse petabytes of data in a distributed fashion. Particle physics thereby stimulates a variety of important technological developments. This is a "consolidated grant", underpinning the base of highly skilled research & technical staff which allows UCL to lead projects at the very highest levels. It provides the support that allows the group to effectively train PhD students & young post-doctoral researchers. The science this grant will support includes: - Understanding the nature of the Higgs boson and the mechanism that gives particles mass. - Understanding why we live in a universe that is dominated by matter with only a tiny anti-matter component, in contrast to the conditions immediately following the Big Bang. We will study in detail the properties of the neutrino, which is a stable, uncharged, almost massless particle released in radioactive beta decays. The neutrino is being studied with the MINOS experiment. UCL is also completing the construction of the SuperNEMO experiment, which will search for the incredibly rare process whereby two simultaneous beta-decays occur inside the nucleus. Examining such decays will yield fundamental insights into the nature of the neutrino. - Searching for phenomena at extremely high energies, well beyond the reach of man-made accelerators like the LHC. We are searching for the interactions of ultra-high energy neutrinos in the Antarctic ice using the ANITA experiment & we will search for the exceedingly rare process whereby a muon (a heavier version of the electron) spontaneously converts into an electron and measure very precisely the interaction of a muon with a magnetic field to establish whether there are new types of interaction or if the muon has any sub-structure. - Developing new accelerator and detector technologies for future experiments. We need to build higher energy colliders, and giant detectors able to detect neutrino beams fired over large distances, as well as 10-times larger underground detectors to continue the search for rare processes. These crucial science goals require the realisation of new detectors with unprecedented performance and which can be scaled-up effectively and affordably. - Sharing the results of our work with other scientists and industry. Our accelerator and radiation measurement expertise can be applied to the fields of nuclear medicine and security. We also cooperate with instrument manufacturers in order to develop better products for our own research and for other scientific and industrial users. Some of this work is funded on other grants but is underpinned by the technical expertise that is supported by this consolidated grant. Continuity & support for the technical base in the UCL High Energy Physics Group is vital to progress the science & the benefits that it brings.
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