Zaefferer, S.: 2D and 3D SEM-based electron diffraction techniques as central tools for correlative microscopy to obtain new insights into microstructure physics and chemistry. Kolloquium des Zentrums für Elektronenmikroskopie, online, Graz, Österreich (2021)
Zaefferer, S.: Towards understanding hydrogen embrittlement: Tools for microscopic and nanoscopic detection of hydrogen and its mechanical effects in microstructures of steels and superalloys. International e-Conference on Structural Materials for Nuclear and Space Applications (SNSA20), Mumbai, India (2020)
Zaefferer, S.: Investigations on microstructural reasons for Goss texture formation in GO electrical steels - a search for the needle in the haystack. 9th International Conference Magnetism and Metallurgy, Rome, Italy (2020)
Zaefferer, S.: Microstructure Characterization in 2D and 3D using Advanced SEM-based Electron Diffraction Techniques. IISC Colloquium, Bangalore, India (2020)
Zaefferer, S.: Electron Channelling Contrast Imaging (ECCI) – A Technique for Observation and Quantitative In-situ Characterization of Crystal Lattice Defects in Bulk Samples. 12th Asia-Pacific Microscopy Conference (APMC 2020), Hyderabad, India (2020)
Zaefferer, S.: Combination of 2D and 3D SEM-based diffraction techniques with various other techniques for understanding of microstructures. Workshop on correlative microscopy, Chennai, India (2020)
Zaefferer, S.: Microstructure Characterization in 2D and 3D using Advanced SEM-based Electron Diffraction Techniques. Chongqing University Colloquium, Chongqing, China (2019)
Zaefferer, S.: Microstructure Characterization in 2D and 3D using Advanced SEM-based Electron Diffraction Techniques. 3rd Materials Genome Engineering Forum, Kunming, China (2019)
Nandy, S.; Zaefferer, S.: On the role of Ca, Zn and Al for ductilization of Mg alloys. 27th International Conference on Materials and Technology (27 ICM&T), Portoroz, Slovenia (2019)
Zaefferer, S.: Measurement of local residual stresses using cross-correlation EBSD and ring core milling. 27th International Conference on Materials and Technology (26 ICM&T), Portoroz, Slovenia (2019)
Zaefferer, S.: Investigation on the effect of hydrogen on dislocation patterns in high-strength steels using electron channeling contrast imaging in the scanning electron microscope. 15th Multinational Congress on Microscopy, Belgrade, Serbia (2019)
Zaefferer, S.; An, D.: Hydrogen-induced embrittlement during fatigue loading of a high-Mn steel investigated by electron channelling contrast imaging (ECCI). Euromat 2019, Stockholm, Sweden (2019)
Zaefferer, S.; Shan, Y.; Madivala, M.: Nano-indentation and electron channeling contrast imaging (ECCI) to understand the interaction of hydrogen and dislocations in a high-Mn TWIP steel. Euromat 2019, Stockholm, Sweden (2019)
Zaefferer, S.: Understanding hydrogen-embrittlement during fatigue loading of a high-Mn-steel using ECCI and CC-EBSD. RMS-EBSD conference, London, UK (2019)
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
This project will aim at developing MEMS based nanoforce sensors with capacitive sensing capabilities. The nanoforce sensors will be further incorporated with in situ SEM and TEM small scale testing systems, for allowing simultaneous visualization of the deformation process during mechanical tests
The utilization of Kelvin Probe (KP) techniques for spatially resolved high sensitivity measurement of hydrogen has been a major break-through for our work on hydrogen in materials. A relatively straight forward approach was hydrogen mapping for supporting research on hydrogen embrittlement that was successfully applied on different materials, and…
It is very challenging to simulate electron-transfer reactions under potential control within high-level electronic structure theory, e. g. to study electrochemical and electrocatalytic reaction mechanisms. We develop a novel method to sample the canonical NVTΦ or NpTΦ ensemble at constant electrode potential in ab initio molecular dynamics…
Photovoltaic materials have seen rapid development in the past decades, propelling the global transition towards a sustainable and CO2-free economy. Storing the day-time energy for night-time usage has become a major challenge to integrate sizeable solar farms into the electrical grid. Developing technologies to convert solar energy directly into…
Crystal Plasticity (CP) modeling [1] is a powerful and well established computational materials science tool to investigate mechanical structure–property relations in crystalline materials. It has been successfully applied to study diverse micromechanical phenomena ranging from strain hardening in single crystals to texture evolution in…