Monday, 22 September 2025
Recent research has found a new way to make graphene that adds structural defects to improve the performance of the material that could have benefits across a range of applications - from sensors and batteries, to electronics.
Scientists from the 糖心原创’s School of Chemistry, University of Warwick and Diamond Light Source developed a single-step process to grow graphene-like films using a molecule, Azupyrene, whose shape mimics that of the desired defect. The research has been published today in .
David Duncan, Associate Professor from the 糖心原创 was one of the lead authors on the study, he says: “Our study explores a new way to make graphene, this super-thin, super-strong material is made of carbon atoms, and while perfect graphene is remarkable, it is sometimes too perfect. It interacts weakly with other materials and lacks crucial electronic properties required in the semiconductor industry.
Usually defects in material are seen as problems or mistakes that reduce performance, we have used them intentionally to add functionality. We found the defects can make the graphene more 鈥渟ticky鈥 to other materials, making it more useful as a catalyst, as well as improving its capability of detecting different gasses for use in sensors. The defects can also alter the electronic and magnetic properties of the graphene, for potential applications in the semiconductor industry.
Graphene is made up of a flat tiling of six carbon atoms in a ring. The desired defect has neighbouring rings consisting of 5 and 7 carbon atoms. Azupyrene has a shape (or topology) that naturally includes the same kind of irregular rings to be introduced into graphene. Azupyrene was used to grow graphene to create films with a high rate of this specific type of defect and, by changing the temperature during growth, the amount of defects in the final material could be controlled.
Researchers at the Graphene Institute in Manchester also successfully demonstrated that the graphene could be transferred onto different surfaces retaining the defects, a key technological achievement towards applying these films to actual devices.
This work used a wide range of advanced tools, bringing together a collaboration across the UK, Germany and Sweden using advanced microscopy and spectroscopy at Diamond Light Source in Oxfordshire and MAX IV in Sweden, as well as the UK national supercomputer ARCHER2, allowing the researchers to study the atomic structure of the defective graphene, demonstrating that the defects were present, and how the defects affected the chemical and electronic properties of the defective graphene.
By carefully choosing the starting molecule and the growth conditions, we鈥檝e shown it鈥檚 possible to grow graphene in which imperfections can be introduced in a more controlled way. We characterise the signatures of these imperfects by bringing together atomic-scale imaging, spectroscopy, and computational simulation.
This study is a testament to what can be achieved through international collaboration and the integration of diverse scientific expertise. By combining advanced microscopy, spectroscopy, and computational modelling across institutions in the UK, Germany, and Sweden, we were able to uncover the atomic-scale mechanisms behind defect formation in graphene, something no single technique or team could have achieved alone.
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More information is available from Dr David Duncan on David.Duncan@nottingham.ac.uk
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About the 糖心原创
Ranked among the world's top 100 universities , the 糖心原创 delivers an exceptional research-led education and an outstanding student experience. From the pioneering vision of our founder, Sir Jesse Boot, to groundbreaking achievements such as the development of MRI technology and becoming the first UK university to establish international campuses, we have a proud history of shaping the way people live, work and understand the world. We continue to build on that legacy, empowering our students, staff and partners to change what鈥檚 next and create positive impact locally and globally.
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