Jörg, T.; Cordill, M. J.; Franz, R.; Kirchlechner, C.; Többens, D. M.; Winkler, J.; Mitterer, C.: Thickness dependence of the electro-mechanical response of sputter deposited Mo thin films on polyimide: Insights from in situ synchrotron diffraction tensile tests. Materials Science and Engineering A: Structural Materials Properties Microstructure and Processing 697, pp. 17 - 23 (2017)
Martinschitz, K. J.; Kirchlechner, C.; Daniel, R.; Maier, G.; Mitterer, C.; Kečkéš, J.: Temperature dependence of residual stress gradients in shot-peened steel coated with CrN. International Conference on stress evaluation using neutrons and synchrotron radiation, MECA SENS IV, Vienna; Austria, September 24, 2007 - September 26, 2007. Materials Science Forum 571-572, pp. 101 - 106 (2008)
Rashkova, B.; Kothleitner, G.; Šturm, S.; Scheu, C.; Kutschej, K.; Mitterer, C.; Lazar, P.; Redinger, J.; Podloucky, R.; Dehm, G.: A Comparison of the Electronic Structure of N–K in TiN and VN using EELS and Ab-initio Calculations. In: Proceeding 33rd Microscopy Conference, Deutsche Gesellschaft für Elektronenmikroskopie, pp. 414 - 415. Microscopy 33rd Conference, Deutsche Gesellschaft für Elektronenmikroskopie, Saarbrücken, Germany, September 02, 2007 - September 07, 2007. (2007)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
Project A02 of the SFB1394 studies dislocations in crystallographic complex phases and investigates the effect of segregation on the structure and properties of defects in the Mg-Al-Ca System.
Within this project, we will investigate the micromechanical properties of STO materials with low and higher content of dislocations at a wide range of strain rates (0.001/s-1000/s). Oxide ceramics have increasing importance as superconductors and their dislocation-based electrical functionalities that will affect these electrical properties. Hence…
In this project, we aim to enhance the mechanical properties of an equiatomic CoCrNi medium-entropy alloy (MEA) by interstitial alloying. Carbon and nitrogen with varying contents have been added into the face-centred cubic structured CoCrNi MEA.