Neugebauer, J.: Materials design and discovery on the computer: Prospects and challenges. Kolloquium Universität Braunschweig , Braunschweig, Germany (2015)
Körmann, F.; Grabowski, B.; Hickel, T.; Neugebauer, J.: Temperature-dependent coupling of atomic and magnetic degree of freedom from first-principles. Electronic Structure Theory for the Accelerated Design of Structural Materials, Moscow, Russia (2015)
Neugebauer, J.: Ab Initio Computation of Phonon-Phonon and Magnon-Phonon Interactions: Successes and Challenges. Workshop DyProSo, Freising, Germany (2015)
Neugebauer, J.: Design of structural materials by predictive ab initio thermodynamics: Challenges, applications and perspectives. Euromat Conference, Warsaw, Poland (2015)
Vatti, A. K.; Todorova, M.; Neugebauer, J.: Formation Energy of Halide ions (Cl/Br/I) in water from ab-initio Molecular Dyna. Psi-k 2015 Conference, San Sebastián, Spain (2015)
Neugebauer, J.: Quantum-mechanical approaches to address the structural and thermodynamic complexity of engineering materials. Swedish Chemical Society, Kalmar, Sweden (2015)
Neugebauer, J.: Understanding the fundamental mechanisms behind H embrittlement: An ab initio guided multiscale approach. Colloquium UCB Vancouver, Vancouver, Canada (2015)
Neugebauer, J.: Vacancies in fcc metals: Discovery of large non-Arrhenius effects. The 5th Sino-German Symposium Thermodynamics and Kinetics of Nano and Mesoscale Materials and Their Applications, Changchun, China (2015)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
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…
This project will aim at addressing the specific knowledge gap of experimental data on the mechanical behavior of microscale samples at ultra-short-time scales by the development of testing platforms capable of conducting quantitative micromechanical testing under extreme strain rates upto 10000/s and beyond.