<![CDATA[Newsroom University of ÃÛÌÒÊÓÆµ¹ÙÍø]]> /about/news/ en Wed, 30 Sep 2026 08:23:58 +0200 Mon, 28 Sep 2026 18:25:24 +0200 <![CDATA[Newsroom University of ÃÛÌÒÊÓÆµ¹ÙÍø]]> https://content.presspage.com/clients/150_1369.jpg /about/news/ 144 Building tomorrow’s technologies, one atom at a time /about/news/building-tomorrows-technologies-one-atom-at-a-time/ /about/news/building-tomorrows-technologies-one-atom-at-a-time/817306From quantum computers to ultra-precise sensors, many of tomorrow’s breakthrough technologies depend on engineering materials at the atomic level. A new £12.6 million programme aims to use this to create advanced devices.From quantum computers to ultra-precise sensors, many of tomorrow’s breakthrough technologies depend on engineering materials at the atomic level. A new £12.6 million programme led by ÃÛÌÒÊÓÆµ¹ÙÍø aims to use this to create advanced devices.

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From atoms to devices

A sensor so precise it can find buried pipes and cavities from the surface, without digging a single hole. A communications system where an eavesdropper cannot hide. A computer that can simulate the behaviour of molecules in ways that enable accelerated drug discovery and materials design.

What do each of these have in common? They’re all possibilities that quantum technologies offer and have a common challenge: the ability to engineer materials with such precision, that individual atoms can be placed where they’re needed and retain their quantum behaviour in ways ordinary materials simply can’t.

That is the ambition behind a new £12.6 million research programme, launched this year with funding from the Engineering and Physical Sciences Research Council (EPSRC). The programme, Materials Engineering for Advanced Devices (MEAD), is led by ÃÛÌÒÊÓÆµ¹Ù꿉۪s Professor Richard Curry, in partnerships with colleagues at ÃÛÌÒÊÓÆµ¹ÙÍø, Imperial College London and the University of Leeds.

The precision problem

Quantum technologies work by exploiting the unusual rules that govern matter at the scale of individual atoms – rules that make certain capabilities in computing, sensing and communication possible, in a way that conventional electronics can’t achieve. Yet when a single misplaced atom can prevent a quantum device from working, understanding and controlling atomic-level structure isn’t just useful, it’s the whole game.

ÃÛÌÒÊÓÆµ¹Ù꿉۪s leadership of the MEAD programme starts here. The University is home to the Platform for Nanoscale Advanced Materials Engineering (P-NAME), a suite of three internationally unique instruments that can implant individual atoms into a material with precisions exceeding 20 nanometres – about 3,000 times finer than a human hair.

It was this capability, combined with advanced isotopic engineering (the use of specific atomic forms of an element that fine-tunes its quantum properties), that recently produced the world’s purest form of silicon. This research, published in the journal (), opens a new route towards quantum devices that can operate reliably without having to constantly correct for interference caused by unwanted atomic impurities (misplaced atoms).

“We’re all united in addressing the same challenge of building new devices, but at ÃÛÌÒÊÓÆµ¹ÙÍø we’ll specifically use our expertise in engineering materials on the nanoscale, so that we can create a new set of advanced materials - specially designed to deliver the required quantum properties at the heart of these.

"We won't just study these materials and their quantum properties in the lab. We'll build them into working prototype devices to prove they can be used in real-world quantum technologies, such as quantum computers, secure communications systems and advanced sensors. Our ambition is for this research to have a transformative impact on how quantum technologies are applied in society."

From atoms to devices

MEAD has three interconnected ambitions, and the first is to produce the building blocks that quantum technologies need.

is developing a new class of quantum sensor aiming to use microscopic particles with quantum-engineered properties held in a vacuum. This approach could hugely increase the sensing performance of current technologies as existing trapped atoms devices are replaced by these macroscopic particles. Alongside this, is working on single-photon sources: devices that emit individual particles of light (photons), which are essential for quantum-secured communications.

Meanwhile, is leading work on using arrays of single atoms placed in isotopically pure silicon to demonstrate long-lived quantum properties for use in quantum computing. These materials will be tested in ÃÛÌÒÊÓÆµ¹Ù꿉۪s new Hi-CaLM facility, a system capable of cooling devices to temperatures just a fraction of a degree above absolute zero, where quantum behaviour can be observed and harnessed in realistic device conditions.

The second task is to develop tools that allow scientists to understand what is actually happening at the atomic scale.

leads this work, aiming to extend materials imaging beyond the current limits. This should reveal not just where atoms sit, but which form (isotope) of each element they represent – something that determines how quantum devices behave.

is developing a technique that uses a form of light capable of passing through materials, to pinpoint the location of individual atoms within a working device without disturbing or damaging it.

then uses a technique called nanoSIMS to verify, at the finest possible resolution, that the materials being engineered actually contain what they’re designed to. Being able to check materials at the atomic scale, and feed those findings back into the engineering process, is what will separate informed development from guesswork.

The third part of the programme focusses on masers – the microwave equivalent of lasers, capable of picking up and amplifying extremely faint signals while adding almost no interference of their own (perhaps think of a microphone that can amplify a whisper across a room without adding any noise to it).

This maser research is led by team, where the modern room-temperature maser was first developed.

will act as a testbed for applying this technology to ‘troposcatter communications’ – a method of bouncing signals to our upper atmosphere to carry communications over long distances without relying on satellites.

, housing the Leeds Nanotechnology Cleanroom, at the University of Leeds will make quantum devices from the materials that ÃÛÌÒÊÓÆµ¹ÙÍø engineers, before returning them to ÃÛÌÒÊÓÆµ¹Ù꿉۪s Hi-CaLM facility for testing and analysis.

The programme draws on more than £150 million of existing infrastructure across the three institutions, often using facilities or equipment that have taken decades to build.

For the UK, which has committed billions to quantum technology investment, MEAD represents an investment on building the scientific foundations that we’ll need to achieve our goals.

Explore MEAD

Are you a potential partner interested in developing the next generation of advanced electronic, optical and quantum devices by engineering materials with single-atom and isotope-level precision? The MEAD team would love to hear from you.

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University awarded £2.4 million to develop new methods to accelerate the replacement and management of SF6 /about/news/university-awarded-24-million-to-develop-new-methods-to-accelerate-the-replacement-and-management-of-sf6/ /about/news/university-awarded-24-million-to-develop-new-methods-to-accelerate-the-replacement-and-management-of-sf6/657375ÃÛÌÒÊÓÆµ¹ÙÍø researchers, as part of a wider consortium led by National Grid Electricity Transmission (NGET), have been awarded funding to find a better way to manage, and ultimately replace SF6 with an environmentally-friendlier alternative. 

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The global energy sector has long relied on sulphur hexafluoride (SF6) to play an important role in electricity systems to prevent short circuits and to keep networks safe and reliable. Now, the ÃÛÌÒÊÓÆµ¹ÙÍø team as part of a wider consortium led by National Grid Electricity Transmission (NGET) have been awarded funding to find a better way to manage, and ultimately replace SF6 with an environmentally-friendlier alternative. 

This ambitious project funded through Strategic Innovation Fund (SIF) Beta Phase, a competition ran by UK Research and Innovation (UKRI) and Ofgem, is part of an initiative designed to significantly reduce greenhouse gas emissions from the UK’s power grid. 

With £2.4 million in new funding for ÃÛÌÒÊÓÆµ¹ÙÍø, the research will build on ’s work for SF6-free retrofill intervention techniques that could supplant SF6 without having to replace or significantly modify existing SF6-designed equipment. These investigations, in partnership with NGET, were named ‘Best Innovation in Net Zero and Sustainability’ at the 2022’s E&T Innovation Awards.  

This project will be led by Dr Tony Chen, Reader in High Voltage Engineering in ÃÛÌÒÊÓÆµ¹Ù꿉۪s Department of Electrical and Electronic Engineering. He will be joined by , Professor in Chemical Engineering, and , Professor in Artificial Intelligence.  

The impact of this project is expected to be wide-ranging and could lead to significant reduction in greenhouse gas emissions. 

The project will further develop aspects of SF6 management based on findings in its alpha phase and will explore the challenges and opportunities in SF6 replacement and management.  

The projects areas of focus include comparing different intervention strategies, developing energy-efficient methods for disposing SF6, modelling of SF6 leakage from switchgear equipment to better inform asset management strategy, and studying alternative gas blends that could replace SF6 in the longer term through retrofill intervention. These efforts are expected to lead to significant technological advancements, providing solutions that could be applied to other sectors that use SF6, such as high-voltage particle accelerators and future electrified transportation systems. 

This initiative could make a substantial contribution to the UK’s carbon reduction targets. If successful, its strategies for extending the lifespan of industry assets would also ensure a more reliable operation, lead to lower energy bills for consumers, and reduce the overall costs of running the national electricity network.  

By working with policymakers, industry leaders, and international standards bodies, the ÃÛÌÒÊÓÆµ¹ÙÍø team are aiming to shape global regulations, continuing to position the UK as a leader in sustainable energy solutions. Their vital research could make a significant contribution to world-wide efforts to cut greenhouse gas emissions from the power sector, helping to close the gap between an unsustainable present and a more sustainable future. 

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6 effectively is crucial to achieving our goals. This project will deepen our understanding of SF6-free technologies, speeding-up their adoption and maintaining the reliability and resilience of the UK’s electricity infrastructure.â€�   ]]> Thu, 12 Sep 2024 15:05:06 +0100 https://content.presspage.com/uploads/1369/14aa60f1-8516-4f07-a428-83130f88e538/500_pylon-503935-1280.jpg?10000 https://content.presspage.com/uploads/1369/14aa60f1-8516-4f07-a428-83130f88e538/pylon-503935-1280.jpg?10000