Lobnig, R. E.; Frankenthal, R. P.; Siconolfi, D. J.; Sinclair, D. J.; Stratmann, M.: Mechanism of Atmospheric Corrosion of Copper in the Presence of Submicron Ammonium Sulfate Particles. Journal of the Electrochemical Society 141 (11), pp. 2935 - 2941 (1994)
Lösch, R.; Stratmann, M.; Viefhaus, H.: Structure and Properties of Mercaptan-LB Films Prepared under Electrochemical potential control. Electrochimica Acta 39, 8-9, pp. 1207 - 1214 (1994)
Nazarov, A. P.; Stratmann, M.: Adsorption of Methoxysilanes on an Iron Surface and Corrosive Behavior of Formed Surfaces in a Corrosive Environment. Protection of Metals 30, 1, pp. 52 - 58 (1994)
Nazarov, A. P.; Stratmann, M.: Synthesis and Properties of Thin Siloxane Films on an Iron Surface. Russian Journal of Physical Chemistry 68 (6), pp. 1007 - 1014 (1994)
Stratmann, M.: Wie rostet Eisen und wie kann man verrostete Eisenoberflächen vor einem weiteren Korrosionsangriff schützen? AdR-Schriftenteihe zur Restaurierung und Grabungstechnik 1, pp. 11 - 16 (1994)
Vago, E. R.; Calvo, E. J.; Stratmann, M.: Electrocatalysis of Oxygen Reduction at Well-Defined Iron Oxide Electrodes. Electrochimica Acta 39 (11-12), pp. 1655 - 1659 (1994)
Kilian, K. H.; Etzold, U.; Stratmann, M.: Fundamental Principles of the Corrosion-Protective Action of the Metallic Coatings on Unalloyed Steel. Stahl und Eisen 113, 5, pp. 49 - 53 (1993)
Leng, A.; Stratmann, M.: The inhibition of the Atmospheric Corrosion of Iron by Vapour Phase Inhibitors. Corrosion Science 34 (10), pp. 1657 - 1683 (1993)
Lösch, R.; Stratmann, M.; Viefhaus, H.: Structural Study of Langmuir-Blodgett-Films Deposited on Metal Substrates under Potential Control. Fresenius Journal of Analytical Chemistry 346 (1-3), pp. 128 - 130 (1993)
Matheisen, E.; Nazarov, A. P.; Stratmann, M.: In-situ Investigation of the Adsorption of Alkyltrimethoxysilanes on Iron Surfaces. Fresenius J. Anal Chem. 346, 1-3, pp. 294 - 296 (1993)
Stratmann, M.: Binding and Reaction Behavior of Chemically-Modified Iron Surfaces. Werkstoffe und Korrosion, Materials and Corrosion 44, 5, pp. 230 - 232 (1993)
Stratmann, M.: Struktur und Stabilität chemisch-modifizierter Stahloberflächen zur Verbesserung der Haftung. Stahl und Eisen 113, 5, pp. 101 - 107 (1993)
Tsai, W.-T.; Reynders, B.; Stratmann, M.; Grabke, H. J.: The Effect of Applied Potential on the Stress Corrosion Cracking Behaviour of High Nitrogen Steels. Corrosion Science 34 (10), pp. 1647 - 1656 (1993)
Wolpers, M.; Stratmann, M.; Viefhaus, H.; Streckel, H.: The structure and stability of metal surfaces modified by silane Langmuir-Blodgett films. Thin Solid Films 210-211 (Part 2), pp. 592 - 596 (1992)
Hydrogen in aluminium can cause embrittlement and critical failure. However, the behaviour of hydrogen in aluminium was not yet understood. Scientists at the Max-Planck-Institut für Eisenforschung were able to locate hydrogen inside aluminium’s microstructure and designed strategies to trap the hydrogen atoms inside the microstructure. This can…
Understanding hydrogen-microstructure interactions in metallic alloys and composites is a key issue in the development of low-carbon-emission energy by e.g. fuel cells, or the prevention of detrimental phenomena such as hydrogen embrittlement. We develop and test infrastructure, through in-situ nanoindentation and related techniques, to study…
Grain boundaries (GBs) are regions connecting adjacent crystals with different crystallographic orientations. GBs are a type of lattice imperfection, with their own structure and composition, and as such impact a material’s mechanical and functional properties. Structural motifs and phases formed at chemically decorated GBs can be of a transient…
Because of their excellent corrosion resistance, high wear resistance and comparable low density, Fe–Al-based alloys are an interesting alternative for replacing stainless steels and possibly even Ni-base superalloys. Recent progress in increasing strength at high temperatures has evoked interest by industries to evaluate possibilities to employ…
To design novel alloys with tailored properties and microstructure, two materials science approaches have proven immensely successful: Firstly, thermodynamic and kinetic descriptions for tailoring and processing alloys to achieve a desired microstructure. Secondly, crystal defect manipulation to control strength, formability and corrosion…