Tehranchi, A.; Zhou, X.; Curtin, W. A.: A decohesion pathway for hydrogen embrittlement in nickel: Mechanism and quantitative prediction. Acta Materialia 185, pp. 98 - 109 (2020)
Tehranchi, A.; Curtin, W. A.: The role of atomistic simulations in probing hydrogen effects on plasticity and embrittlement in metals. Engineering Fracture Mechanics 216, 106502 (2019)
Leyson, G.; Curtin, W. A.: Solute strengthening at high temperatures. Modelling and Simulation in Materials Science and Engineering 24 (6), 065005 (2016)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
This project studies the influence of grain boundary chemistry on mechanical behaviour using state-of-the-art micromechanical testing systems. For this purpose, we use Cu-Ag as a model system and compare the mechanical response/deformation behaviour of pure Cu bicrystals to that of Ag segregated Cu bicrystals.