Özcan, Ö.; Pohl, K.; Keil, P.; Grundmeier, G.: Effect of hydrogen and oxygen plasma treatments on the electrical and electrochemical properties of zinc oxide nanorod films on zinc substrates. Electrochemistry Communications 13 (8), pp. 837 - 839 (2011)
Özcan, Ö.; Blumenau, A. T.; Grundmeier, G.: A combined experimental-computational approach: Revealing the organosilane to zinc oxide binding mechanism. Euradh 2008 - Adhesion '08, St Catherine's College, Oxford, UK (2008)
Özcan, Ö.; Blumenau, A. T.; Grundmeier, G.: Adsorption of Organosilanes on ZnO Surfaces. 2nd IMPRS-SurMat Workshop in Surface and Interface Engineering in Advanced Materials, Ruhr-Universität Bochum, Germany (2008)
Thissen, P.; Özcan, Ö.; Torres, E.; Diesing, D.; Grundmeier, G.: Combining Monte Carlo Kinetics and Density Functional Theory to simulate Temperature Programmed Desorption. American Vacuum Society 54th International Symposium, Seattle, WA, USA (2007)
Özcan, Ö.; Thissen, P.; Diesing, D.; Blumenau, A. T.; Grundmeier, G.: A Monte Carlo - DFT Study: Adsorption of organosilanes on polar ZnO(0001) surfaces. 43rd Symposium on Theoretical Chemistry, Saarbrücken, Germany (2007)
Özcan, Ö.; Thissen, P.; Blumenau, A. T.; Grundmeier, G.: Adsorption of organosilane molecules on polar ZnO (0001) surfaces. ECASIA 2007, 12th European Conference on Applications of Surface and Interface Analysis, Brussels-Flggey, Belgium (2007)
Özcan, Ö.; Blumenau, A. T.; Grundmeier, G.: Adsorption of Organosilanes on ZnO Surfaces. 2nd IMPRS-SurMat Workshop in Surface and Interface Engineering in Advanced Materials, Ruhr-Universität Bochum, Bochum, Germany (2008)
Özcan, Ö.; Thissen, P.; Blumenau, A. T.; Grundmeier, G.: Adsorption of organosilane molecules on polar ZnO(0001) surfaces. 12th European Conference on Applications of Surface and Interface Analysis (ECASIA'07), Brussels, Belgium (2007)
Thissen, P.; Özcan, Ö.; Diesing, D.; Grundmeier, G.: Monte Carlo Simulation of Temperature Programmed Desorption Including Binding Energies and Frequency Factors Derived by DFT Calculations. 43rd Symposium on Theoretical Chemistry, Saarbrücken, Germany (2007)
Özcan, Ö.: Synthesis, Characterisation and Functionalisation of ZnO Nanorods on Metals. Dissertation, Fakultät für Maschinenbau der Ruhr-Universität Bochum, Bochum, Germany (2010)
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 project Hydrogen Embrittlement Protection Coating (HEPCO) addresses the critical aspects of hydrogen permeation and embrittlement by developing novel strategies for coating and characterizing hydrogen permeation barrier layers for valves and pumps used for hydrogen storage and transport applications.
The project focuses on development and design of workflows, which enable advanced processing and analyses of various data obtained from different field ion emission microscope techniques such as field ion microscope (FIM), atom probe tomography (APT), electronic FIM (e-FIM) and time of flight enabled FIM (tof-FIM).
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.
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…
This work led so far to several high impact publications: for the first time nanobeam diffraction (NBD) orientation mapping was used on atom probe tips, thereby enabling the high throughput characterization of grain boundary segregation as well as the crystallographic identification of phases.
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.