Completed Physics & Astronomy Mathematics & Statistics

Experimental Particle Physics Rolling Grant 2006-2011

In plain English

AI plain-English summary

Physicists at Lancaster University will smash protons together at the Tevatron and LHC accelerators, fire neutrinos across Japan, and prepare for a future electron-positron collider to probe the Universe's most fundamental ingredients. This research tackles the deepest open questions in fundamental science: what gives particles mass, why matter triumphed over antimatter after the Big Bang, and whether hidden symmetries or extra dimensions exist. The team will also study how neutrinos change flavour as they travel, which could reveal a new source of matter-antimatter imbalance. The work is purely curiosity-driven, with no immediate practical application. But past fundamental particle physics has given the world the World Wide Web, medical imaging, and radiation therapy. A clearer understanding of mass, symmetry, and the early Universe could, over decades, reshape how we think about energy, matter, and the fabric of reality itself.

View original technical description
This research is aimed at understanding the properties of the basic building blocks of the Universe (the elementary particles) and the nature of the fundamental forces which govern the interactions of these particles. In so doing, deep insights will be gained about the origin and evolution of the Universe, especially in the first moments after the Big Bang. The Lancaster research programme covers all the main types of accelerator facilities and is based on hadron collider physics with the Tevatron (Fermilab) and LHC (CERN) machines, the observation of long baseline neutrino oscillations in Japan and, in the longer term future, high energy electron-positron collisions at the International Linear Collider (ILC). All of this work will be underpinned by Lancaster's expertise in characterising and understanding the properties of heavily irradiated silicon particle detectors, in operating high performance computing facilities on the Grid and in writing offline event reconstruction software. The hadron collider physics is expected to reveal detailed properties of B hadrons (containing heavy b-quarks) including the mixing of neutral B mesons containing strange quarks, and CP violation which is related to the existence of the matter-antimatter asymmetry in the Universe. Searches for new physics at the LHC will focus on understanding the origin of mass (and the role of the Higgs boson), the existence of new symmetries of nature (e.g. supersymmetry) and extra spatial dimensions. The neutrino oscillations programme is expected to provide important information about the masses of and the amount of mixing amongst the three known species of neutrinos. If the appearance of electron neutrinos can be observed in a muon neutrino beam then it may be possible, in a further phase of the research, to establish the existence of CP violation in the neutrino sector of the Standard Model. This could have wide reaching implications for the understanding of the matter-antimatter asymmetry of the Universe. The electron-positron collider (the ILC) will enable a continuation of some of the research performed at the LHC but with a facility of greater precision and versatility. It could be especially crucial for the elucidation of the properties of the Higgs boson and supersymmetry if they exist as well as being an abundant source of top quraks.

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Researchers

Andre Sopczak (Co-Investigator)Gareth Hughes (Co-Investigator)Guennadi Borissov (Co-Investigator)Iain Bertram (Co-Investigator)Laura Kormos (Co-Investigator)Peter Ratoff (Principal Investigator)Roger Jones (Co-Investigator)Vakhtang Kartvelishvili (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Experimental Particle Physics Rolling Grant 2009-2014
Experimental Particle Physics 2012-2016
2012 Consolidated Grant Supplement
Lancaster Experimental Particle Physics Consolidated Grant 2015-2019
Lancaster Experimental Particle Physics Consolidated Grant 2022-2025

Original classification

Research Grant

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