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Aston University economists say Prime Minister can reduce UK trade vulnerability with China visit featured image

Aston University economists say Prime Minister can reduce UK trade vulnerability with China visit

Greenland episode exposed UK’s lack of effective response to economic coercion from allies Research shows tariff retaliation would have cost the average UK household up to £324 per year Economists say China visit is “portfolio risk management” – diversification reduces vulnerability. The Prime Minister’s visit to China – the first by a British PM since 2018 – is an opportunity to reduce the UK’s vulnerability to economic coercion, according to new research from Aston University. A policy paper from Aston Business School’s Centre for Business Prosperity analyses the January 2026 Greenland tariff episode, when President Trump threatened and then withdrew tariffs on eight European countries. The researchers found that the UK had no good options: retaliation would have made Britain worse off, while absorbing the tariffs left Europe without credible deterrence. Director of the centre for business prosperity, Professor Jun Du, said: “The Greenland episode was a wake-up call. When your principal security ally threatens economic coercion, the old assumptions about who is safe and who is dangerous no longer hold. “The PM’s China visit should be framed as portfolio risk management – building diversified trading relationships that reduce the UK’s exposure to any single partner. Just as investors don’t put all their money in one stock, countries shouldn’t put all their trade into one basket. A UK with multiple strong partnerships is harder to pressure, whether the pressure comes from Washington or Beijing.” The research found that coordinated UK–EU tariff retaliation would have cost British households up to £324 per year – the worst outcome modelled. But the authors argue that Europe has untapped leverage elsewhere: the US runs a €148 billion annual services surplus with the EU, and mutual investment exceeds €5.3 trillion. Associate professor of economics and co-author, Dr Oleksandr Shepotylo, said: “Tariff retaliation fails because it hurts consumers and distorts the economy – the retaliator suffers similarly to the target. But Europe has cards it isn’t playing. Services, investment screening, and regulatory access are pressure points where Europe can respond effectively.” UK exports to China fell by 10.4% in the year to Q2 2025, with goods exports down 23.1% – the sharpest decline among major trading partners. The researchers argue that this closes off the UK’s largest alternative market at precisely the moment US reliability is in question. The paper identifies three priorities for UK policy: Recognise the permanent incentives behind US tariffs. US tariff revenue hit $264 billion in 2025. Trade negotiations alone cannot resolve revenue-driven policy. Build UK–EU coordination on non-tariff instruments. Services, investment, procurement, and regulation offer leverage that tariffs do not. Treat China engagement as portfolio risk management. Concentration in any single market creates vulnerability. Diversification is not about picking sides – it’s about resilience. Professor Du added: “The question for the Prime Minister is whether to use this breathing space to build resilience – or wait for the next Greenland.” To read the policy paper in full, click on this link:

Jun Du profile photoDr Oleksandr Shepotylo profile photo
2 min. read
UF works with Gainesville-based Peaceful Paths to educate the public about domestic abuse and cybersecurity featured image

UF works with Gainesville-based Peaceful Paths to educate the public about domestic abuse and cybersecurity

Domestic abuse affects millions of people every year, often in unseen and deeply personal ways, and online threats toward victims can be particularly harmful. To address this reality locally, the University of Florida’s Center for Privacy and Security for Marginalized and Vulnerable Populations, or PRISM, works with Gainesville-based domestic abuse support center Peaceful Paths to help people stay safe in the digital world. Kevin Butler, Ph.D., the director of PRISM and the Florida Institute for Cybersecurity Research at UF, has been researching issues related to security and privacy of technologies that affect survivors of intimate partner violence for years. He and his graduate students connected with Peaceful Paths in 2022, presenting their findings on cybersecurity and demonstrating how their research may help improve online safety for vulnerable populations. They developed a pilot study, a survey and interview protocols that are now helping those in need at the center. “[We aim to] develop principles of design that will allow for a robust technology design that really mitigates harms and improves benefits for all,” Butler said about PRISM. Educating abuse survivors has been a key component of the collaboration between UF and Peaceful Paths. For example, PRISM’s team has conducted research on the effects of stalkerware, also known as spyware, which is a type of software or app designed to be installed secretly on people’s devices to monitor their activities without their consent. Abusers may use this tool to track and harass victims, and stalkerware is regularly linked to domestic violence – a fact that is not widely known. "Even the first presentation [UF] gave enhanced our advocates' knowledge of security pieces, which helps them safety plan with survivors," said Peaceful Paths CEO Crystal Sorrow. “It actually increases the safety of everyone in the community we work with when we talk about red flags, digital dating abuse and healthy relationships.” While PRISM, which is supported by the National Science Foundation, is making an impact on the local community, its overall reach is much broader. PRISM was the first academic partner in the Coalition Against Stalkerware, which includes groups such as the National Network to End Domestic Violence, the Electronic Frontier Foundation, and law enforcement agencies throughout the United States and the world.

Kevin Butler profile photo
2 min. read
Advanced magnetic materials fusion research at VCU College of Engineering receives $500K grant from Virginia Clean Energy Innovation Bank featured image

Advanced magnetic materials fusion research at VCU College of Engineering receives $500K grant from Virginia Clean Energy Innovation Bank

Supporting fusion energy system development in the state, the Virginia Commonwealth University (VCU) College of Engineering will acquire an ultrasonic metal-powder atomizer to advance critical research in magnetic materials needed for compact fusion reactors. Made possible by a $500,000 grant from the Virginia Clean Energy Innovation Bank (VCEIB), the funds support VCU Engineering’s Advanced Magnetic Materials Processing Laboratory (AM2P), enabling VCU Engineering to establish Virginia’s first in-state capability for producing custom, high-purity metal powders tailored for next-generation fusion reactor components. “Clean-energy innovations from fusion to grid-scale technologies demand materials that can operate under extreme conditions while remaining manufacturable at scale,” said Radhika Barua, Ph.D., assistant professor in the Department of Mechanical & Nuclear Engineering and director of AM2P. “This project will be transformative as we can now design advanced alloy compositions, produce them in-house, and immediately integrate them into additively manufactured components—dramatically accelerating the innovation cycle.” This project positions Virginia to capture a share of the rapidly expanding fusion materials and advanced manufacturing market, projected to surpass $8 billion annually by 2035. Also, this investment is expected to unlock more than $4 million in additional federally competitive research funding over the next four years. “This is a smart, high-impact investment in Virginia’s energy future,” said Glenn Davis, director of the Virginia Department of Energy. “By establishing in-state powder atomization and advanced materials capability, we’re positioned to become a critical node in the emerging fusion supply chain while strengthening our defense and clean-energy industrial base.” This comes on the heels of last year’s announcement that Commonwealth Fusion Systems will make a multibillion-dollar investment to build the world’s first grid-scale commercial fusion power plant in Chesterfield County. The AM2P Lab has emerged as one of the few academic research centers in the nation with deep expertise in additively manufactured permanent magnets, soft magnetic alloys and magnetocaloric materials. “This equipment and research will not only support fusion activities but also open doors for collaborative activities with multiple federal agencies including the Army Research Laboratory, the Air Force Office of Scientific Research and the Office of Naval Research,” said Arvind Agarwal, Ph.D., professor and chair of the Department of Mechanical & Nuclear Engineering. “This grant accelerates Virginia’s leadership in advanced nuclear and fusion manufacturing while strengthening workforce readiness,” said Julianne Szyper, deputy director of the Virginia Department of Energy. “By connecting Virginia’s academic talent with industry and national lab partners, we’re creating an ecosystem that drives innovation, supports high-quality careers and positions the Commonwealth as a competitive hub for clean-energy technologies like fusion.”

Radhika Barua, Ph.D. profile photo
2 min. read
What makes the NFL's biggest game so Super? featured image

What makes the NFL's biggest game so Super?

Why would someone pay $10,000 for a Super Bowl ticket? Why does the big game serve as a reason for a party – perhaps the only event to do so on a national level? How do teams lock in and play their best while the whole world is watching? University of Delaware experts can deliver answers to those and other questions long before the first chip hits the dip. Amit Kumar, an assistant professor of marketing and expert on happiness, said that part of the reason people derive hedonic benefits from buying tickets to sporting events like the Super Bowl is because of the memories they provide and the conversational value they generate. He pointed to his study on consuming experiences, which found that consumers derive more happiness from purchasing experiences than from buying possessions. Kumar can also talk about the benefits of Super Bowl parties and the psychology behind the social connections that take place at sports-related gatherings. Other UD experts who can comment on the Super Bowl include: • Kyle Emich, professor of management: The inner-working of teams, decision-making and how emotions influence cognitive processing. • John Allgood, instructor of sport management: Fan engagement and the economics of sports. • Nataliya Bredikhina, assistant professor of sport management: Athlete branding and event sponsorships. • Tim Deschriver, associate professor of sport management: Topics related to sports economics, finance and marketing. • Karin Sabernagel, professor of physical therapy: Specializes in lower extremity musculoskeletal injuries, sports medicine and tendon injuries (ankle, knee). To reach these experts directly and arrange interviews, visit their profiles and click on the "contact" button. Interested reporters can also contact MediaRelations@udel.edu.

Amit Kumar profile photoJohn Allgood II profile photoKyle Emich profile photoTim DeSchriver profile photoKarin Gravare Silbernagel profile photo
2 min. read
The AI Journal: UF and other research universities will fuel AI. Here’s why featured image

The AI Journal: UF and other research universities will fuel AI. Here’s why

In the global AI race between small and major competitors, established companies versus new players, and ubiquitous versus niche uses, the next giant leap isn’t about faster chips or improved algorithms. Where AI agents have already vacuumed up so much of the information on the internet, the next great uncertainty is where they’ll find the next trove of big data. The answer is not in Silicon Valley. It’s all across the nation at our major research universities, which are key to maintaining global competitiveness against China. To teach an AI system to “think” requires it to draw on massive amounts of data to build models. At a recent conference, Ilya Sutskever, the former chief scientist at OpenAI — the creator of ChatGPT — called data the “fossil fuel of AI.” Just as we will use up fossil fuels because they are not renewable, he said we are running out of new data to mine to keep fueling the gains in AI. However, so much of this thinking assumes AI was created by private Silicon Valley start-ups and the like. AI’s history is actually deeply rooted in U.S. universities dating back to the 1940s, when early research laid the groundwork for the algorithms and tools used today. While the computing power to use those tools was created only recently, the foundation was laid after World War II, not in the private sector but at our universities. Contrary to a “fossil fuel problem,” I believe AI has its own renewable fuel source: the data and expertise generated from our comprehensive public academic institutions. In fact, at the major AI conferences driving the field, most papers come from academic institutions. Our AI systems learn about our world only from the data we offer them. Current AI models like ChatGPT are scraping information from some academic journal articles in open-access repositories, but there are enormous troves of untapped academic data that could be used to make all these models more meaningful. A way past data scarcity is to develop new AI methods that leverage all of our knowledge in all of its forms. Our research institutions have the varied expertise in all aspects of our society to do this. Here’s just one example: We are creating the next generation of “digital twin” technology. Digital twins are virtual recreations of places or systems in our world. Using AI, we can develop digital twins that gather all of our data and knowledge about a system — whether a city, a community or even a person — in one place and allow users to ask “what if” questions. The University of Florida, for example, is building a digital twin for the city of Jacksonville, which contains the profile of each building, elevation data throughout the city and even septic tank locations. The twin also embeds detailed state-of-the-art waterflow models. In that virtual world, we can test all sorts of ideas for improving Jacksonville’s hurricane evacuation planning and water quality before implementing them in the actual city. As we continue to layer more data into the twin — real-time traffic information, scans of road conditions and more — our ability to deploy city resources will be more informed and driven by real-time actionable data and modeling. Using an AI system backed by this digital twin, city leaders could ask, “How would a new road in downtown Jacksonville impact evacuation times? How would the added road modify water runoff?” and so on. The possibilities for this emerging area of AI are endless. We could create digital twins of humans to layer human biology knowledge with personalized medical histories and imaging scans to understand how individuals may respond to particular treatments. Universities are also acquiring increasingly powerful supercomputers that are supercharging their innovations, such as the University of Florida’s HiPerGator, recently acquired from NVIDIA, which is being used for problems across all disciplines. Oregon State University and the University of Missouri, for example, are using their own access to supercomputers to advance marine science discoveries and improve elder care. In short, to see the next big leap in AI, don’t immediately look to Silicon Valley. Start scanning the horizon for those research universities that have the computing horsepower and the unique ability to continually renew the data and knowledge that will supercharge the next big thing in AI. Read more...

Alina Zare profile photo
3 min. read
Augusta University public health experts discuss building recovery through economic stability featured image

Augusta University public health experts discuss building recovery through economic stability

In this candid conversation, Vahé Heboyan, PhD, and Marlo Vernon, PhD, talk about their work at the intersection of public health, economic stability and substance use disorder recovery. The interviews are centered on Augusta University's public health-driven small business training initiative and explore how recovery is strengthened when communities invest in people and provide practical paths to long-term stability. Heboyan, a professor in AU's School of Public Health and a public health expert with a background as an economist, explains that economic vulnerability often hinders recovery, especially in rural areas with limited resources where risk-taking can be costly. He translates economic research into public health practice, emphasizing that small businesses and microenterprises are about providing a sustainable income for individuals and families, not creating large corporations. This stability, he notes, can have a ripple effect, supporting local economies, job opportunities and community resilience. Vernon, whose research focuses on maternal and infant health, as well as substance use disorder recovery, highlights the human side of recovery and the importance of financial security for families. She notes that economic instability can increase the risk of relapse, especially for mothers in recovery who are supporting children. Her insights show that entrepreneurship can be a public health tool, addressing income, dignity, confidence and long-term wellbeing. Both interviews emphasize the key role of community in recovery. Heboyan points out the power of peer support and shared experience, noting how participants use their past challenges as strengths. Vernon agrees, emphasizing that effective public health work requires building relationships and engaging with communities over time, rather than just conducting short-term research. Together, the interviews show that recovery is part of a larger ecosystem that includes economic opportunity, mentorship and community trust. The video illustrates how combining economics, public health and lived experience can create lasting, meaningful impact for individuals in recovery and their communities. Looking to know more? Click on Dr. Vernon's profile below. To connect with Dr. Heboyan, simply contact AU's Communications team via email (mediarelations@augusta.edu) to arrange an interview today.

Marlo Vernon, PhD profile photo
2 min. read
Training champions: University of Delaware experts prepares students Olympic success featured image

Training champions: University of Delaware experts prepares students Olympic success

University of Delaware students, alumni and experts are very involved with this year's Olympics. The following are available for interview.  Alumni Attending Olympic Games  Shannon Colleton is a 2022 graduate of UD's Physical Therapy Sports Residency Program heading to the Winter Olympics with the U.S. Ski and Snowboard Team. She's specifically working as a PT for the women's speed skiing team (Super G and the downhill competitions). Students Covering Olympics Cris Granada, a senior communication major and member of UD's soccer team, has parlayed a summer internship with NBC Sports into a position as a production assistant with the network at the Winter Olympics. Professors with Olympic Expertise Matthew Robinson, professor of sport management in Lerner, is an all-around Olympics expert. He can talk about the host city, Milan, and the IOC's evolving model of hosting games in multiple locations. He can also talk about the idea of sport as a unifier despite what's going on in the world around us. Robinson can also talk about the burden the NHL faces, having to pause its season so players can compete on the world stage. While it's an honor to have an athlete represent their country on the world stage, it's also a risk to the professional team if they get hurt. The NBA feels similarly about the Summer Games. Soccer also pauses for the World Cup. Jeffrey Schneider, clinical instructor of kinesiology and applied physiology, has worked with Olympic figure skaters in the past and can speak as an expert on this sport. Thomas Buckley, professor of kinesiology and applied physiology, is an expert in ice hockey and bobsledding. He can talk about common injuries, risks/benefits. He noted that bobsledding has a surprisingly high rate of concussion and repetitive head trauma due to the speed of the sport. To contact Robinson and Buckley directly, visit their profile pages and click the "contact" button. Interviews for all the experts featured here can also be arranged by contacting mediarelations@udel.edu.

Matthew Robinson profile photoThomas A. Buckley profile photo
2 min. read
From classroom to cosmos: Students aim to build big things in space featured image

From classroom to cosmos: Students aim to build big things in space

In the vast vacuum of space, Earth-bound limitations no longer apply. And that’s exactly where UF engineering associate professor Victoria Miller, Ph.D., and her students are pushing the boundaries of possibilities. In partnership with the Defense Advanced Research Projects Agency, known as DARPA, and NASA’s Marshall Space Flight Center, the University of Florida engineering team is exploring how to manufacture precision metal structures in orbit using laser technology. “We want to build big things in space. To build big things in space, you must start manufacturing things in space. This is an exciting new frontier,” said Miller. An associate professor in the Department of Materials Science & Engineering at UF’s Herbert Wertheim College of Engineering, Miller said the project called NOM4D – which means Novel Orbital and Moon Manufacturing, Materials, and Mass-efficient Design – seeks to transform how people think about space infrastructure development. Picture constructing massive structures in orbit, like a 100-meter solar array built using advanced laser technology. “We’d love to see large-scale structures like satellite antennas, solar panels, space telescopes or even parts of space stations built directly in orbit. This would be a major step toward sustainable space operations and longer missions,” said team member Tianchen Wei, a third-year Ph.D. student in materials science and engineering. UF received a $1.1 million DARPA contract to carry out this pioneering research over three phases. While other universities explore various aspects of space manufacturing, UF is the only one specifically focused on laser forming for space applications, Miller said. A major challenge of the NOM4D project is overcoming the size and weight limitations of rocket cargo. To address these concerns, Miller’s team is developing laser-forming technology to trace precise patterns on metals to bend them into shape. If executed correctly, the heat from the laser bends the metal without human touch; a key step toward making orbital manufacturing a reality. “With this technology, we can build structures in space far more efficiently than launching them fully assembled from Earth,” said team member Nathan Fripp, also a third-year Ph.D. student studying materials science and engineering. “This opens up a wide range of new possibilities for space exploration, satellite systems and even future habitats.” Miller said laser bending is complex but getting the correct shape from the metal is only part of the equation. “The challenge is ensuring that the material properties stay good or improve during the laser-forming process,” she said. “Can we ensure when we bend this sheet metal that bent regions still have really good properties and are strong and tough with the right flexibility?” To analyze the materials, Miller’s students are running controlled tests on aluminum, ceramics and stainless steel, assessing how variables like laser input, heat and gravity affect how materials bend and behave. “We run many controlled tests and collect detailed data on how different metals respond to laser energy: how much they bend, how much they heat up, how the heat affects them and more. We have also developed models to predict the temperature and the amount of bending based on the material properties and laser energy input,” said Wei. “We continuously learn from both modeling and experiments to deepen our understanding of the process.” The research started in 2021 and has made significant progress, but the technology must be developed further before it’s ready for use in space. This is why collaboration with the NASA Marshall Space Center is so critical. It enables UF researchers to dramatically increase the technology readiness level (TRL) by testing laser forming in space-like conditions inside a thermal vacuum chamber provided by NASA. Fripp leads this testing using the chamber to observe how materials respond to the harsh environment of space. “We've observed that many factors, such as laser parameters, material properties and atmospheric conditions, can significantly determine the final results. In space, conditions like extreme temperatures, microgravity and vacuums further change how materials behave. As a result, adapting our forming techniques to work reliably and consistently in space adds another layer of complexity,” said Fripp. Another important step is building a feedback loop into the manufacturing process. A sensor would detect the bending angle in real time, allowing for feedback and recalibration of the laser’s path. As the project enters its final year, finishing in June of 2026, questions remain -- especially around maintaining material integrity during the laser-forming process. Still, Miller’s team remains optimistic. UF moves one step closer to a new era of construction with each simulation and laser test. “It's great to be a part of a team pushing the boundaries of what's possible in manufacturing, not just on Earth, but beyond,” said Wei.

Victoria Miller profile photo
4 min. read
Research Matters: 'Unsinkable' Metal Is Here featured image

Research Matters: 'Unsinkable' Metal Is Here

What if boats, buoys, and other items designed to float could never be sunk — even when they’re cracked, punctured, or tossed by an angry sea? If you think unsinkable metal sounds like science fiction. Think again. A team of researchers at the University of Rochester led by professor Chunlei Guo has devised a way to make ordinary metal tubes stay afloat no matter how much damage they sustain. The team chemically etches tiny pits into the tubes that trap air, keeping the tubes from getting waterlogged or sinking. Even when these superhydrophobic tubes are submerged, dented, or punctured, the trapped air keeps them buoyant and, in a very literal sense, unsinkable. “We tested them in some really rough environments for weeks at a time and found no degradation to their buoyancy,” says Guo, a professor of physics and optics and a senior scientist at the University of Rochester’s Laboratory for Laser Energetics. “You can poke big holes in them, and we showed that even if you severely damage the tubes with as many holes as you can punch, they still float.” Guo and his team could usher in a new generation of marine tech, from resilient floating platforms and wave-powered generators to ships and offshore structures that can withstand damage that would sink traditional steel. Their research highlights the University of Rochester’s knack for translating physics into practical wonder. For reporters covering materials science, sustainable engineering, ocean tech, or innovative design, Guo is the ideal expert to explain why “unsinkable metal” might be closer to everyday use than you think. To connect with Guo, contact Luke Auburn, director of communications for the Hajim School of Engineering and Applied Sciences, at luke.auburn@rochester.edu.

2 min. read
Univ. of Delaware child expert appears on Good Morning America to discuss latest book featured image

Univ. of Delaware child expert appears on Good Morning America to discuss latest book

Parents have a new manual for raising their young ones courtesy of child experts Roberta Golinkoff and Kathy Hirsh-Pasek. Their new book, "Einstein Never Used Flash Cards, Revised Edition", is all about how to give children their best shot at success while also making sure children don't feel the pressures of the world.  Golinkoff, a professor in the School of Education at the University of Delaware.  The pair appeared on Good Morning America to discuss play, children's development and how parents can thrive in a new digital age.  Golinkoff spoke about the 6 C's that everyone – children and adults alike – need to be productive humans: Collaborate Communicate Content Critical Thinking Creative Innovation Confidence ABOUT Roberta Michnick Golinkoff is a professor in the School of Education at the University of Delaware. She also holds joint appointments in the Departments of Psychological and Brain Sciences and Linguistics and Cognitive Science. Golinkoff is also founder and director of the Child’s Play, Learning, and Development Lab. 

Roberta Golinkoff profile photo
1 min. read