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Tiny atomic changes could lead to smarter wireless technology

08.26.26 | Queen Mary University of London
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Queen Mary University of London researchers have discovered a new way to make wireless communication devices more adaptable, paving the way for smarter antennas, more efficient networks, and next-generation communication technologies.

Researchers at Queen Mary University of London have shown that making extremely small changes to the structure of a material can dramatically improve its ability to respond to electrical signals. Published recently in Science Advances, the breakthrough could help create a new generation of wireless devices that can change frequency on demand, making communication systems more flexible and energy efficient.

The team focused on a ceramic material called strontium tantalate. By replacing a small number of atoms with slightly smaller calcium atoms, they created tiny distortions in the material's structure. Although these changes occur at the atomic scale, they have a major effect on how the material behaves.

Creating order from tiny imperfections

The researchers found that these atomic-scale distortions create small regions of electrical activity, known as polar nanoclusters, inside a material that would normally be electrically inactive. These nanoclusters can quickly respond to electric fields, allowing the material's properties to be tuned when needed.

"This is a bit like finding a way to add dimmer switches to a system that previously only had an on and off setting," said Professor Yang Hao, lead author of the study. "Small structural changes give us a much greater level of control."

A surprising result

One of the most striking findings was how little calcium was needed to achieve the effect. The best-performing material contained just 8% calcium, yet it showed a rare combination of strong tunability, low energy loss and stable performance across a wide range of frequencies.

This is significant because engineers have long faced a trade-off: materials that are easy to tune often waste energy or perform poorly at high frequencies. The Queen Mary team found a way to overcome this challenge, potentially solving a problem that has limited the development of tunable electronic devices for decades.

Why it matters

Modern communication systems are expected to do more than ever before. Mobile networks, satellites, radar systems and connected devices all need to cope with increasing amounts of data and changing operating conditions. Materials that can adjust their properties in real time could help these systems become more efficient and adaptable.

Importantly, the researchers did not stop at the laboratory stage. They incorporated the material into prototype antennas and microwave devices and demonstrated that the operating frequency could be changed using electrical voltage or temperature.

Looking ahead

The discovery could support the development of future wireless technologies, including reconfigurable antennas, adaptive communication networks and advanced sensing systems. Because the material is lead-free, it could also contribute to more environmentally sustainable electronic technologies.

Beyond its practical applications, the research provides a new way of thinking about materials design. By carefully engineering tiny distortions within a crystal structure, scientists may be able to create entirely new functionalities without relying on complex or expensive materials.

Yang Hao, corresponding author and Professor of Antennas and Electromagnetics at Queen Mary University of London, said:

"Our work shows that very small changes at the atomic scale can have a remarkable impact on material performance. By engineering microscopic strain between the layers of a crystal, we were able to create dynamic polar regions that deliver strong tunability without the drawbacks usually associated with conventional ferroelectric materials. This opens an exciting pathway towards smarter, more adaptive communication technologies."

Dr Hangfeng Zhang, lead author of the study, said:
"Wireless technologies are becoming increasingly sophisticated, and that creates a need for materials that can adapt quickly and efficiently. Our research shows that small changes at the atomic level can have a surprisingly large effect on performance. We hope this approach will help support the development of smarter antennas, tunable communication devices and other technologies that need to respond to changing demands in real time."

ENDS

Notes to editors

The research was carried out by scientists from the School of Electronic Engineering and Computer Science and the School of Engineering and Materials Science at Queen Mary University of London.

It will be published in Science Advances on 14:00 (2:00 pm) U.S. Eastern Time Wednesday, 26 August 2026.

The study introduces a new approach called interlayer microstrain engineering to create tunable dielectric materials.

The research was supported by the Engineering and Physical Sciences Research Council (EPSRC) and the Royal Academy of Engineering.

Science Advances

10.1126/sciadv.aeg3509

Randomized controlled/clinical trial

Not applicable

Emergent polar order from interlayer microstrain in layered perovskites

26-Aug-2026

Keywords

Article Information

Contact Information

Laura Shepherd
Queen Mary University of London
l.shepherd@qmul.ac.uk

How to Cite This Article

APA:
Queen Mary University of London. (2026, August 26). Tiny atomic changes could lead to smarter wireless technology. Brightsurf News. https://www.brightsurf.com/news/LQ4NO6N8/tiny-atomic-changes-could-lead-to-smarter-wireless-technology.html
MLA:
"Tiny atomic changes could lead to smarter wireless technology." Brightsurf News, Aug. 26 2026, https://www.brightsurf.com/news/LQ4NO6N8/tiny-atomic-changes-could-lead-to-smarter-wireless-technology.html.