Zaefferer, S.: In-situ electron channeling contrast imag-ing (ECCI) to observe the effect of hydro-gen in TWIP steels and superalloys. Physikalisches Kolloquium der Universität Wien, Wien, Austria (2019)
Zaefferer, S.: The importance of microstructures for the energy conversion efficiency of materials for photovoltaic and photothermic applications. Development of Photovoltaic Solar Energy in Africa by the Year 2030, Abidjan, Republik Côte d’Ivoire (2018)
Zaefferer, S.; Abdellaoui, L.; Rogowitz, A.: Controlled electron channelling contrast imaging, cECCI, for quantitative and in-situ characterization of lattice defects in bulk samples of metals and minerals. 19th International Microscopy Conference, Sydney, Australia (2018)
Zaefferer, S.: Understanding the correlation of crystallographic character and corrosion behaviour of grain boundaries in a stainless steel using large-area 3D EBSD. RMS-EBSD conference , Plymouth, UK (2018)
Zaefferer, S.; Shan, Y.; Madivala, M.: Combination of nano-indentation and electron channeling contrast imaging (ECCI) to understand the interaction of hydrogen and dislocations in a high-Mn TWIP steel. Nanobrücken 2018, Erlangen, Germany (2018)
Körkemeyer, F.; Molodov, D. A.; Molodov, K. D.; Dalinger, A.; Gerstein, G.; Tripathi, A.; Zaefferer, S.; Maier, H. J.: Mechanical properties of Mg and Mg alloys during and after high current density pulses. 2nd Conference and Exhibition on Light Materials, Bremen, Germany (2017)
Zaefferer, S.: Observation and quantification of elastic and plastic strain using SEM-based diffraction methods, Part 1. 7th international conference deformation and fracture of materials and nanomaterials, Moscow, Russia (2017)
Zaefferer, S.: Observation and quantification of elastic and plastic strain using SEM-based diffraction methods, Part 2. 7th international conference deformation and fracture of materials and nanomaterials, Moscow, Russia (2017)
An, D.; Zaefferer, S.: Quasi in-situ characterization of dislocation structure evolution during low cycle shear fatigue of high manganese steel. 25th International Conference on Materials and Technology, Portorož, Slovenia (2017)
Tripathi, A.; Zaefferer, S.: Resolution of EBSD in light metals: how good are we? 25th International Conference on Materials and Technology, Portorož, Slovenija (2017)
Zaefferer, S.; Schemmann, L.; Stechmann, G.; Ram, F.; Archie, F. M. F.: Using orientation microscopy to explore the correlation of materials properties and microstructures. 25th International conference on materials and technology, Portorož, Slovenia (2017)
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
The goal of this project is to develop an environmental chamber for mechanical testing setups, which will enable mechanical metrology of different microarchitectures such as micropillars and microlattices, as a function of temperature, humidity and gaseous environment.
Water electrolysis has the potential to become the major technology for the production of the high amount of green hydrogen that is necessary for its widespread application in a decarbonized economy. The bottleneck of this electrochemical reaction is the anodic partial reaction, the oxygen evolution reaction (OER), which is sluggish and hence…
The computational materials design department in collaboration with the Technical University Darmstadt and the Ruhr University Bochum developed a workflow to calculate phase diagrams from ab-initio. This achievement is based on the expertise in the ab-initio thermodynamics in combination with the recent advancements in machine-learned interatomic…
The structure of grain boundaries (GBs) is dependent on the crystallographic structure of the material, orientation of the neighbouring grains, composition of material and temperature. The abovementioned conditions set a specific structure of the GB which dictates several properties of the materials, e.g. mechanical behaviour, diffusion, and…
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.
Crystal plasticity modelling has gained considerable momentum in the past 20 years [1]. Developing this field from its original mean-field homogenization approach using viscoplastic constitutive hardening rules into an advanced multi-physics continuum field solution strategy requires a long-term initiative. The group “Theory and Simulation” of…