A national network of advanced electron microscopes—called EPR spectrometers—will give UK researchers access to machines that probe the behaviour of unpaired electrons in materials. Unpaired electrons control the properties of many important substances: free radicals in chemical reactions, metal ions in catalysts, active sites in biological enzymes, and defects in solid-state materials. Standard laboratory equipment cannot reveal the full electronic structure of these paramagnetic materials. The National Research Facility for EPR Spectroscopy fills that gap by providing state-of-the-art instruments—continuous-wave and pulsed microwave systems, variable magnetic fields, and temperature control—that directly measure the electron’s local chemical environment. If the facility succeeds, researchers across physics, chemistry, biology, and materials science will design better catalysts, understand enzyme mechanisms, and characterise defects in semiconductors and quantum materials. These advances could improve industrial chemical processes, develop more efficient solar cells, or enable new magnetic and electronic devices. The facility also trains the next generation of EPR users, ensuring the UK retains expertise in a technique that underpins fundamental science and applied research alike.
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Electrons are fundamental to the composition of all materials, determining the structure of molecular bonds and the stability and properties of compounds. The study of the electronic distribution in molecules therefore provides a direct window into understanding molecular structure, function and bonding. Electrons possess a fundamental property called "spin", which, pictured classically causes the electron to behave as a bar-magnet when placed in a magnetic field. In many materials all electrons are present in pairs, with the spin on the two electrons being equal and opposite. However, in many important materials there are unpaired electrons: such materials are called paramagnets. Paramagnets are ubiquitous across physical, biological and materials sciences, for example in free-radicals, metal ions, active sites in biological systems, or defects in solids, and these unpaired electrons are critical in dictating the electronic, magnetic and (bio)chemical behaviour of such materials. Unpaired electrons can be intrinsic to the material or extrinsic, induced by, for example, chemical doping or labelling, or by electrochemical or optical excitation. The most powerful method to study paramagnetic materials is Electron Paramagnetic Resonance (EPR) spectroscopy, also known as Electron Spin Resonance (ESR), part of the magnetic resonance range of techniques that also includes Magnetic Resonance Imaging (MRI) and Nuclear Magnetic Resonance (NMR). EPR directly probes the environment of the unpaired electrons, yielding information on the chemical environment in which the electron is present. State-of-the-art EPR requires substantial instrumentation, including continuous wave and pulsed techniques (differing in how microwaves are applied, and how the signal is detected), and variable magnetic field and temperature regimes, giving access to different information content on the paramagnet. A National Research Facility (NRF) for EPR gives a cost-effective method for wide access to infrastructure, expertise and training to the UK academic community. The NRF will support researchers in their projects from first enquiry, where assistance can be provided to design, plan and cost experiments into grant applications, through to training via hands-on experience and training courses, support to perform experiments, and advice and expertise to aid data analysis, modelling and interpretation.
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