Hassel, A. W.; Diesing, D.: Breakdown of ultrathin anodic valve metal oxide films in metal-insulator-metal-contacts compared with metal-insulator-electrolyte contacts. Thin Solid Films 414, pp. 296 - 303 (2002)
Hassel, A. W.; Diesing, D.: Trapping of transient processes in aluminium oxide thin films in a voltage pulse experiment. Electrochemistry Communications 4, pp. 1 - 4 (2002)
Hassel, A. W.; van der Kloet, J.; Schmidt, W.; Stratmann, M.: In-situ SKP Investigation and ToF-SIMS Analysis of Filiform Corrosion on Aluminium Alloy 2024-T3. Proceed. Japan Soc. CoRR. Engineer. Mater. Environments 48, pp. 61 - 69 (2001)
Mozalev, A.; Poznyak, A.; Mozaleva, I.; Hassel, A. W.: The voltage-time behaviour for porous anodizing of aluminium in a fluoride-containing oxalic acid electrolyte. Electrochem. Commun. 3, pp. 299 - 305 (2001)
Seo, M.; Aihara, M.; Hassel, A. W.: Cathodic Decomposition and Anodic Dissolution and Changes in Surface Morphology of n-type InP in HCl. J. Electrochem. Soc. 148, pp. B400 - B404 (2001)
Seo, M.; Aihara, M.; Hassel, A. W.: Cathodic Decomposition and Changes in Surface Morphology of InP in HCl. Electrochem. Soc. Proc. PV 00-25, pp. 576 - 585 (2000)
Diesing, D.; Hassel, A. W.; Lohrengel, M. M.: Aluminium Oxide Tunnel Junctions: Influence of Preparation Technique, Sample Geometry and Oxide Thickness. Thin Solid Films 342, pp. 282 - 290 (1999)
Hassel, A. W.; Seo, M.: Localised Investigation of Coarse Grain Gold with the Scanning Droplet Cell and by the Laue Method. Electrochim. Acta 44, pp. 3769 - 3777 (1999)
Hassel, A. W.; Lohrengel, M. M.: The Scanning Droplet Cell and its Application to Structured Nanometer Oxide Films on Aluminium. Electrochimica Acta 42, pp. 3327 - 3333 (1997)
Hassel, A. W.; Lohrengel, M. M.; Schultze, J. W.: Ultradünne Aluminiumoxidschichten: Untersuchung elektronischer und ionischer Transportprozesse. Metalloberfläche 50, pp. 19 - 22 (1996)
Hassel, A. W.; Lohrengel, M. M.; Schultze, J. W.: Ultradünne Aluminiumoxidschichten: Untersuchung elektronischer und ionischer Transportprozesse. Metalloberfläche 50, pp. 19 - 22 (1996)
Hassel, A. W.; Lohrengel, M. M.: Preparation and Properties of Ultra Thin Anodic Valve Metal Oxide Films. Materials Science Forum 185-188, pp. 581 - 590 (1995)
Hassel, A. W.; Lohrengel, M. M.; Rüße, S.; Schultze, J. W.: On the Mechanism of Ion Transport in Thin (1-100 nm) Oxide Films on Aluminum and Tantalum. Bulletin of the Chemists and Technologists of Macedonia 13, pp. 49 - 54 (1994)
Hassel, A. W.; Bonk, S.; Wicinski, M.; Stratmann, M.; Ogle, K.; Philips-Falcey, N.; Ostwald, C.; Janssen, S.; Stellnberger, K.-H.; Konrath, P.: Passive/active transistions in cyclic corrosion tests. Office for Official Publications of the European Communities, Luxembourg, Luxembourg (2007)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
This study investigates the mechanical properties of liquid-encapsulated metallic microstructures created using a localized electrodeposition method. By encapsulating liquid within the complex metal microstructures, we explore how the liquid influences compressive and vibrational characteristics, particularly under varying temperatures and strain…
In this project, we investigate a high angle grain boundary in elemental copper on the atomic scale which shows an alternating pattern of two different grain boundary phases. This work provides unprecedented views into the intrinsic mechanisms of GB phase transitions in simple elemental metals and opens entirely novel possibilities to kinetically engineer interfacial properties.
Within this project, we will use an infra-red laser beam source based selective powder melting to fabricate copper alloy (CuCrZr) architectures. The focus will be on identifying the process parameter-microstructure-mechanical property relationships in 3-dimensional CuCrZr alloy lattice architectures, under both quasi-static and dynamic loading…
With the support of DFG, in this project the interaction of H with mechanical, chemical and electrochemical properties in ferritic Fe-based alloys is investigated by the means of in-situ nanoindentation, which can characterize the mechanical behavior of independent features within a material upon the simultaneous charge of H.