Schuhmacher, B.; Müschenborn, W.; Stratmann, M.; Schultrich, B.; Klages, C. P.; Kretschmer, M.; Seyfert, U.; Forster, F.; Tiller, H. J.: Novel coating systems and surface technologies for continuous processing of steel sheet. Advanced Engineering Materials 3, pp. 681 - 689 (2001)
Fili, T.; Rohwerder, M.; Stratmann, M.: Influence of Surface Plasma Pretreatment on the Interface Properties of a-SiC:H-Covered Steel Substrates. Advanced Engineering Materials 2, 6, pp. 378 - 380 (2000)
Fürbeth, W.; Stratmann, M.: Scanning Kelvin Probe investigations on the delamination of polymeric coatings from metallic surfaces. Progress in Organic Coatings 39 (1), pp. 23 - 29 (2000)
Kowalik, T.; Adler, H. J. P.; Plagge, A.; Stratmann, M.: Neue Wege der Haftungsvermittlung mit wasserbasierten Celluloselackfilmen für Keramik-Stahl- und Titanoberflächen. Farbe und Lack 11, pp. 48 - 55 (2000)
Rohwerder, M.; Stratmann, M.: Surface modification by ordered monolayers: New ways of protecting materials against corrosion. MRS Bulletin 24 (7), pp. 43 - 47 (1999)
Grundmeier, G.; Stratmann, M.: Influence of oxygen and argon plasma treatments on the chemical structure and redox state of oxide covered iron. Journal of Applied Surface Science 141, 1-2, pp. 43 - 56 (1999)
Leng, A.; Streckel, H.; Stratmann, M.: The Delamination of Polymeric Coatings from Steel. Part 1: Calibration of the Kelvinprobe and basic delamination mechanism. Corrosion Science 41, 3, pp. 547 - 578 (1999)
Leng, A.; Streckel, H.; Stratmann, M.: The Delamination of Polymeric Coatings from Steel. Part 3: Effect of the oxygen partial pressure on the delamination reaction and current distribution at the metal/polymer interface. Corrosion Science 41, 3, pp. 599 - 620 (1999)
Leng, A.; Streckel, H.; Stratmann, M.: The Delamination of Polymeric Coatings from Steel. Part 2: First stage of delamination, effect of type and concentration of cations on delamination, chemical analysis of the interface. Corrosion Science 41, 3, pp. 579 - 597 (1999)
Grundmeier, G.; Stratmann, M.: Plasma Polymerization - A new and promising way for the corrosion protection of steel. Materials and Corrosion 49 (3), pp. 150 - 160 (1998)
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.
In order to develop more efficient catalysts for energy conversion, the relationship between the surface composition of MXene-based electrode materials and its behavior has to be understood in operando. Our group will demonstrate how APT combined with scanning photoemission electron microscopy can advance the understanding of complex relationships…
To advance the understanding of how degradation proceeds, we use the latest developments in cryo-atom probe tomography, supported by transmission-electron microscopy. The results showcase how advances in microscopy & microanalysis help bring novel insights into the ever-evolving microstructures of active materials to support the design of better…
The worldwide developments of electric vehicles, as well as large-scale or grid-scale energy storage to compensate the intermittent nature of renewable energy generation has generated a surge of interest in battery technology. Understanding the factors controlling battery capacity and, critically, their degradation mechanisms to ensure long-term…
Water electrolysis has the potential to become the major technology for the production of the high amount of green hydrogen that is necessary for its widespread application in a decarbonized economy. The bottleneck of this electrochemical reaction is the anodic partial reaction, the oxygen evolution reaction (OER), which is sluggish and hence…