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)
Kubásek, J.; Torkornoo, S.; Nečas, D.; McCarroll, I.; Hybášek, V.; Gault, B.; Jablonská, E.; Donik, Č.; Paulin, I.; Gogola, P.et al.; Kusý, M.; Míchal, Z.; Fojt, J.; Čavojský, M.; Duchoň, J.; Jarošová, M.; Čapek, J.: Towards increased strength and retained ductility of Zn-Mg-(Ag) materials for medical devices by adopting powder metallurgy processing routes. Journal of Materials Research and Technology 37, pp. 4345 - 4361 (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
This project aims to develop a testing methodology for the nano-scale samples inside an SEM using a high-speed nanomechanical low-load sensor (nano-Newton load resolution) and high-speed dark-field differential phase contrast imaging-based scanning transmission electron microscopy (STEM) sensor.
The thorough, mechanism-based, quantitative understanding of dislocation-grain boundary interactions is a central aim of the Nano- and Micromechanics group of the MPIE [1-8]. For this purpose, we isolate a single defined grain boundary in micron-sized sample. Subsequently, we measure and compare the uniaxial compression properties with respect to…
The goal of this project is the investigation of interplay between the atomic-scale chemistry and the strain rate in affecting the deformation response of Zr-based BMGs. Of special interest are the shear transformation zone nucleation in the elastic regime and the shear band propagation in the plastic regime of BMGs.
In this project we developed a phase-field model capable of describing multi-component and multi-sublattice ordered phases, by directly incorporating the compound energy CALPHAD formalism based on chemical potentials. We investigated the complex compositional pathway for the formation of the η-phase in Al-Zn-Mg-Cu alloys during commercial…