Renner, F. U.: From corrosion to batteries: Studies on electrochemical interfaces. Seminar talk at SLAC National Accelerator Laboratory, Stanford, CA, USA (2012)
Duarte, M. J.; Renner, F. U.; Klemm, J.: Corrosion analysis and corrosion breakdown of Fe-based amorphous and nanocrystalline alloys. 220th ECS Meeting and Electrochemical Energy Summit, Boston MA, USA (2011)
Renner, F. U.: Oberflächen auf der atomaren Skala: Entlegierung als ein Beispiel aus der Korrosion. Colloquium, Technische Universität Hamburg-Harburg, Germany (2011)
Renner, F. U.: Corrosion behaviour of Fe-Al(-X) alloys in steam. Deutsche Gesellschaft für Materialkunde - DGM, Technical Committee Meeting, Technische Universität Dresden, Germany (2011)
Renner, F. U.; Vogel, D.; Vogel, A.; Palm, M.: Main Scale formation of Fe-Al based model alloys in steam. International Symposium on High-temperature Oxidation and Corrosion, Zushi, Japan (2010)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
The full potential of energy materials can only be exploited if the interplay between mechanics and chemistry at the interfaces is well known. This leads to more sustainable and efficient energy solutions.
This project is part of Correlative atomic structural and compositional investigations on Co and CoNi-based superalloys as a part of SFB/Transregio 103 project “Superalloy Single Crystals”. This project deals with the identifying the local atomic diffusional mechanisms occurring during creep of new Co and Co/Ni based superalloys by correlative…
This study investigates the mechanical properties of liquid-encapsulated metallic microstructures created using a localized electrodeposition method. By encapsulating liquid within the complex metal microstructures, we explore how the liquid influences compressive and vibrational characteristics, particularly under varying temperatures and strain…
In this project, we investigate a high angle grain boundary in elemental copper on the atomic scale which shows an alternating pattern of two different grain boundary phases. This work provides unprecedented views into the intrinsic mechanisms of GB phase transitions in simple elemental metals and opens entirely novel possibilities to kinetically engineer interfacial properties.