Lee, C.-G.; Chae, B.-G.; Ro, I.-J.; Jang, K.; Kim, N.-K.; Ahn, J.-P.; Woods, E.; Ahn, J.; Park, S.; Gault, B.et al.; Kim, S.-H.: Performance evaluation of deep-ultraviolet laser-assisted Invizo 6000 and near-ultraviolet laser-assisted LEAP 5000 for a range of material systems. Ultramicroscopy 281, 114296 (2026)
Jin Jang, T.; Lee, G.; Song, S.; Sung, M.; Lee, J.; Kim, Y.; Sung, H.; Saksena, A.; Gault, B.; Kim, S.-H.et al.; Zargaran, A.; Na, Y.; Su Sohn, S.: Ultrastrong and ductile high-entropy alloy with minimal serration at liquid helium temperature via coherent nanoprecipitate. Acta Materialia 300, 121513 (2025)
Gault, B.; Shoji Aota, L.; Krämer, M.; Kim, S.-H.: From impurity ingress to high-performance doping: A perspective on atom probe tomography in energy materials. Scripta Materialia 262, 116648 (2025)
Ro, I. -.; Lee, C.-G.; Aota, L. S.; Choi, W.; Won, S.; Ahn, J.-P.; Kim, H.-R.; Choi, G.; Gault, B.; Kim, S.-H.: Influence of chemical composition and microstructure on fatigue performance of reinforcing steel. Journal of Materials Research and Technology 36, pp. 2589 - 2599 (2025)
Camuti, L.; Kim, S.-H.; Podjaski, F.; Vega-Paredes, M.; Mingers, A. M.; Acartürk, T.; Starke, U.; Lotsch, B. V.; Scheu, C.; Gault, B.et al.; Zhang, S.: Kinetics and direct imaging of electrochemically formed palladium hydride for efficient hydrogen evolution reaction. Physics > Chemical Physics (2025)
Lee, C.; Yun, Y. H.; Kim, S.-H.; Doo, G.; Lee, S.; Park, H.; Park, Y.; Shin, J.; Cho, H.-S.; Kim, S.-K.et al.; Cho, E.; Jung, C.; Kim, M.: Structural and Compositional Optimization of Fe–Co–Ni Ternary Amorphous Electrocatalysts for Efficient Oxygen Evolution in Anion Exchange Membrane Water Electrolysis. Small 21 (4), 2405468 (2025)
Max Planck scientists design a process that merges metal extraction, alloying and processing into one single, eco-friendly step. Their results are now published in the journal Nature.
Scientists of the Max-Planck-Institut für Eisenforschung pioneer new machine learning model for corrosion-resistant alloy design. Their results are now published in the journal Science Advances
Hydrogen in aluminium can cause embrittlement and critical failure. However, the behaviour of hydrogen in aluminium was not yet understood. Scientists at the Max-Planck-Institut für Eisenforschung were able to locate hydrogen inside aluminium’s microstructure and designed strategies to trap the hydrogen atoms inside the microstructure. This can…