Active Physics & Astronomy Computing & AI

King's EPAP Consolidated Grant 2025

In plain English

AI plain-English summary

Neutrinos streaming from the Sun and nuclear reactors are passing through the King’s College London lab, and researchers there are building detectors to catch them. The team is trying to solve a fundamental puzzle: why the universe is made of matter and not antimatter. They measure a process called CP violation in neutrino oscillations, which could explain why matter survived after the Big Bang. The group also hunts for dark matter particles using the LUX-ZEPLIN experiment and is helping design a next-generation liquid xenon observatory. A new effort uses atom interferometry to detect gravitational waves in a frequency band no current instrument can reach. This is fundamental science with no immediate practical application. But past work on neutrinos led to the discovery that they have mass—a finding that reshaped the Standard Model of particle physics. If these experiments succeed, they could rewrite our understanding of the early universe and the laws that govern it.

View original technical description
Our strategy addresses three of the STFC challenges: C1 (fundamental particles), C2 (fundamental laws and symmetries) and C8 (asymmetry between matter and antimatter). Our central involvement, and the one with which we founded our group at King’s in 2019, is in neutrino physics. The experiments we are involved in revolve around two high-level topics: understanding the matter-antimatter asymmetry measuring CP violation (T2K, Super-K, Hyper-K) and lepton flavour violation (SNO+, LEGEND), both are required by Sakharov’s conditions, and also astrophysics (IceCube, and also the above experiments can do astrophysics). It is a mix of currently running and future experiments, which can achieve higher potential. The direct detection of dark matter (DM) is a new research area for the group, established in 2022. The strategy is to pursue world-leading physics results using data from the now-running LUX-ZEPLIN (LZ) experiment, and taking a leading role in the construction of the proposed next-generation XLZD LXe-observatory at Boulby or elsewhere. King’s is actively engaged in technology R&D for current and future experiments, with a new initiative focusing on DRD-UK in liquid detectors Quantum Technologies for Fundamental Physics is an emerging area of importance for King’s, and activities are focused on the Atom Interferometric Observatory and Network (AION) project. AION is a proposed research infrastructure that will allow studies of DM and gravitational waves (GWs) from cosmological and astrophysical sources in the highly relevant but currently inaccessible mid-frequency band.

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Researchers

Christopher McCabe (Co-Investigator)Francesca Di Lodovico (Principal Investigator)James Dobson (Co-Investigator)Jeanne Wilson (Co-Investigator)John Ellis (Co-Investigator)Teppei Katori (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Particle Physics Consolidated Grant from the University of Sheffield - ATLAS, ATLAS upgrade, T2K, LBNE/F, Hyper-K, MICE, LZ, DMGS, DRIFT, R&D, KE
Imperial College Particle Physics Experiment Consolidated Grant
Consolidated Grant for the Centre for Particle Physics at Royal Holloway, University of London
Particle Physics Consolidated Grant from the University of Sheffield - ATLAS, ATLAS upgrade, T2K, FNE, MICE, EDELWEISS/EURECA, DMGS, SNO+, R&D, KE
2012 Consolidated Grant Supplement

Original classification

Research and Innovation

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.