Huang, S.; Tegg, L.; Yamini, S. A.; Tuli, V.; Burr, P.; McCarroll, I.; Yang, L.; Moore, K. L.; Cairney, J. M.: Atom probe study of second-phase particles in Zircaloy-4. Journal of Nuclear Materials 616, 156049 (2025)
Huang, S.; Tegg, L.; Yamini, S. A.; Chen, L.; Burr, P.; Qu, J.; Yang, L.; Mccarroll, I.; Cairney, J. M.: Atomic distribution of alloying elements and second phase particles (SPPs) identification in Optimised ZIRLO. Acta Materialia 297, 121365 (2025)
Schwarz, T.; Birbilis, N.; Gault, B.; McCarroll, I.: Understanding the Al diffusion pathway during atmospheric corrosion of a Mg-Al alloy using atom probe tomography. Corrosion Science 252, 112951 (2025)
Yang, L.; Chen, E. Y.-S.; Qu, J.; Garbrecht, M.; McCarroll, I.; Mosiman, D. S.; Saha, B.; Cairney, J. M.: Improved atom probe specimen preparation by focused ion beam with the aid of multi-dimensional specimen control. Microstructures 5 (1), 2025007 (2025)
Torkornoo, S.; Bohner, M.; McCarroll, I.; Gault, B.: Optimization of Parameters for Atom Probe Tomography Analysis of β-Tricalcium Phosphates. Microscopy and Microanalysis 30 (6), pp. 1074 - 1082 (2024)
Schwarz, T.; Yu, W.; Zhan, H.; Gault, B.; Gourlay, C.; McCarroll, I.: Uncovering Ce-rich clusters and their role in precipitation strengthening of an AE44 alloy. Scripta Materialia 232, 115498 (2023)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
Hydrogen embrittlement is one of the most substantial issues as we strive for a greener future by transitioning to a hydrogen-based economy. The mechanisms behind material degradation caused by hydrogen embrittlement are poorly understood owing to the elusive nature of hydrogen. Therefore, in the project "In situ Hydrogen Platform for…
Defects at interfaces strongly impact the properties and performance of functional materials. In functional nanostructures, they become particularly important due to the large surface to volume ratio.
This ERC-funded project aims at developing an experimentally validated multiscale modelling framework for the prediction of fracture toughness of metals.
In this project, links are being established between local chemical variation and the mechanical response of laser-processed metallic alloys and advanced materials.