Swaminathan, S.; Spiegel, M.; Rohwerder, M.: Effect of annealing conditions on the selective oxidation of quarternary model alloy. 4th International Conference on Diffusion in Solids and Liquids, Barcelona, Spain (2008)
Borodin, S.; Rohwerder, M.: Growth of high quality crystalline aluminium oxide films on Nb(110)/sapphire(11-20). 14th International Conference on Solid Films and Surfaces (ICSFS), Dublin, Ireland (2008)
Borodin, S.; Rohwerder, M.: Preparation of model single crystalline aluminium oxide films suitable for scanning tunnelling microscopy. DPG Tagung 2008, 72. Jahrestagung der Deutsche Physikalische Gesellschaft, Berlin, Germany (2008)
Michalik, A.; Rohwerder, M.: Long-range ion transport properties of conducting-polymers. 59th Annual Meeting of the International Society of Electrochemistry, Sevilla, Spain (2008)
Rohwerder, M.: Intelligent corrosion protection by organic coatings based on conducting polymers. Departmental Seminar at Departement für Chemie und Biochemie der Universität Bern, Bern, Switzerland (2008)
Borissov, D.; Rohwerder, M.: Fundamental Investigation of the Effect of Oxides on the Reaction Kinetics During Hot Dip Galvanizing. GALVATECH `07, 7th International Conference on Zinc and Zinc Alloy Coated Steel Sheet, Osaka, Japan (2007)
Isik-Uppenkamp, S.; Laaboudi, A.; Rohwerder, M.: Delamination of Polymer/Metal Interfaces: On the Correlation of Kinetics and Interfacial Structure. 212th ECS Meeting, Washington, D.C., USA (2007)
Borodin, S.; Rohwerder, M.: STM-investigation of self-assembly of phosphonates on model oxides. ECASIA 2007, 12th European Conference on Applications of Surface and Interface Analysis, Brussels-Flggey, Belgium (2007)
Laaboudi, A.; Isik-Uppenkamp, S.; Rohwerder, M.: Modelling cathodic delamination: Oxygen reduction and interface degradation at a molecularly well defined coating/metal interface. ECASIA 2007, 12th European Conference on Applications of Surface and Interface Analysis, Brussels-Flagey, Belgium (2007)
Isik-Uppenkamp, S.; Stratmann, M.; Rohwerder, M.: Scanning Kelvin Probe Microscopy for characterisation of iron mobility at buried interfaces. ECASIA 2007, 12th European Conference on Applications of Surface and Interface Analysis, Brussels-Flggey, Belgium (2007)
Van De Putte, T.; Borissov, D.; Loison, D.; Penning, J.; Rohwerder, M.; Claessens, S.: Reduction of SiO2 Surface Oxides by Solute Carbon to Improve the Galvanizability of Si alloyed AHSS. International Conference on New Developments in Advanced High Strength Sheet Steels, Orlando, FL, USA (2007)
Rohwerder, M.: Inherent delamination protection by novel zinc alloys. GALVATECH `07, 7th International Conference on Zinc and Zinc Alloy Coated Steel Sheet, Osaka, Japan (2007)
Rohwerder, M.: Release-Systeme für die Selbstheilung von Polymer/Metall-Grenzflächen. 2.WING Konferenz (BMBF): Der Stoff, aus dem Innovationen sind., Aachen, Germany (2006)
Stempniewicz, M.; Rohwerder, M.; Marlow, F.: Release of guest molecules from modified mesoporous silica. 5th International Mesostructured Materials Symposium, Shanghai, China (2006)
This project targets to exploit or develop new methodologies to not only visualize the 3D morphology but also measure chemical distribution of as-synthesized nanostructures using atom probe tomography.
The mission of our group is to uncover the fundamental mechanisms of deformation and degradation in battery systems and to leverage mechanical principles to design damage-resilient energy storage systems.
Here the focus lies on investigating the temperature dependent deformation of material interfaces down to the individual microstructural length-scales, such as grain/phase boundaries or hetero-interfaces, to understand brittle-ductile transitions in deformation and the role of chemistry or crystallography on it.
The group aims at unraveling the inner workings of ion batteries, with a focus on probing the microstructural and interfacial character of electrodes and electrolytes that control ionic transport and insertion into the electrode.
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.