Zaefferer, S.: An overview on techniques for high spatial resolution measurements of plastic and elastic strain by EBSD and related techniques. RexGG pre-conference workshop, Wollongong, Australia (2013)
Zaefferer, S.; Konijnenberg, P. J.: Advanced analysis of 3D EBSD data obtained from FIB-EBSD tomography. RexGG pre-conference workshop, Wollongong, Australia (2013)
Zaefferer, S.: An overview on techniques for high spatial resolution measurements of plastic and elastic strain by EBSD and related techniques. MicroCar 2013, Leipzig, Germany (2013)
Schemmann, L.; Zaefferer, S.: First experiences using a low-energy WDX spectrometer (LEXS) on a FEG-SEM for carbon determination on a martensitic steel. EMAS 2013, Porto, Portugal (2013)
Schemmann, L.; Zaefferer, S.; Raabe, D.: Influence of the inheritance of chemical elements on the transformation behaviour during intercritical annealing of DP steel strips. Euromat 2013, Sevilla, Spain (2013)
Zaefferer, S.: Techniques and application of 3D orientation microscopy based on EBSD tomography. GN-MEBA (groupement nationale de microscopie electronique a balayage) 2013, Paris, France (2013)
Zaefferer, S.: Combined Application of EBSD and ECCI for Crystal Defect Observation in Bulk Samples. GN-MEBA (groupement nationale de microscopie electronique a balayage) 2013, Paris, France (2013)
Zaefferer, S.; Elhami, N. N.: Theory and application of electron channelling contrast imaging (ECCI) of defects in metals. RMS EBSD 2013, Oxford, UK (2013)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
This project aims to investigate the influence of grain boundaries on mechanical behavior at ultra-high strain rates and low temperatures. For this micropillar compressions on copper bi-crystals containing different grain boundaries will be performed.
Within this project we investigate chemical fluctuations at the nanometre scale in polycrystalline Cu(In,Ga)Se2 and CuInS2 thin-flims used as absorber material in solar cells.
This project aims to develop a testing methodology for the nano-scale samples inside an SEM using a high-speed nanomechanical low-load sensor (nano-Newton load resolution) and high-speed dark-field differential phase contrast imaging-based scanning transmission electron microscopy (STEM) sensor.
The thorough, mechanism-based, quantitative understanding of dislocation-grain boundary interactions is a central aim of the Nano- and Micromechanics group of the MPIE [1-8]. For this purpose, we isolate a single defined grain boundary in micron-sized sample. Subsequently, we measure and compare the uniaxial compression properties with respect to…