Mukherjee, T.; Breitbach, B.; Meneghetti, M.; Rabe, M.: Broadening the Ambit of Raman Solvation Shell Spectroscopy on Small Particle Dispersions. Journal of Physical Chemistry C 129 (39), pp. 17892 - 17901 (2025)
Warden, G.; Sivananthan, A.; Marthinsen, A.; Ebbinghaus, P.; Rabe, M.; Juel, M.; Gaweł, B.; Erbe, A.; Di Sabatino, M.: Influence of impurities and OH-group content on viscosity, cristobalite formation and bubble evolution in fused quartz crucibles at temperatures for Czochralski process. Solar Energy Materials and Solar Cells 290, 113707 (2025)
Ramirez, M.; R., S.; Samiseresht, N.; Martínez-Roque, M. A.; Catania, F.; Graef, K.; Rabe, M.; Offenhäusser, A.; Mayer, D.; Figueroa-Miranda, G.: A Truncated Multi-Thiol Aptamer-Based SARS-CoV-2 Electrochemical Biosensor: Towards Variant-Specific Point-of-Care Detection with Optimized Fabrication. Biosensors 15 (1), 24 (2025)
Warden, G. K.; Ebbinghaus, P.; Rabe, M.; Juel, M.; Gaweł, B. A.; Erbe, A.; Di Sabatino, M.: Investigation of uniformity in fused quartz crucibles for Czochralski silicon ingots. Journal of Crystal Growth 645, 127844 (2024)
Zhong, X.; Schulz, M.; Wu, C.-H.; Rabe, M.; Erbe, A.; Rohwerder, M.: Limiting Current Density of Oxygen Reduction under Ultrathin Electrolyte Layers: From the Micrometer Range to Monolayers. ChemElectroChem 8 (4), pp. 712 - 718 (2021)
Rabe, M.; Kerth, A.; Blume, A.; Garidel, P.: Albumin displacement at the air-water interface by Tween (Polysorbate) surfactants. European Biophysics Journal with Biophysics Letters 49, pp. 533 - 547 (2020)
Rabe, M.: Spectram: A MATLAB® and GNU octave toolbox for transition model guided deconvolution of dynamic spectroscopic data. Journal of Open Research Software 8, 13 (2020)
Rabe, M.; Toparli, C.; Chen, Y.-H.; Kasian, O.; Mayrhofer, K. J. J.; Erbe, A.: Alkaline manganese electrochemistry studied by in situ and operando spectroscopic methods - metal dissolution, oxide formation and oxygen evolution. Physical Chemistry Chemical Physics 21 (20), pp. 10457 - 10469 (2019)
Daudey, G. A.; Schwieger, C.; Rabe, M.; Kros, A.: Influence of Membrane–Fusogen Distance on the Secondary Structure of Fusogenic Coiled Coil Peptides. Langmuir 35 (16), pp. 5501 - 5508 (2019)
Uebel, M.; Exbrayat, L.; Rabe, M.; Tran, T. H.; Crespy, D.; Rohwerder, M.: On the Role of Trigger Signal Spreading Velocity for Efficient Self-Healing Coatings for Corrosion Protection. Journal of the Electrochemical Society 165 (16), pp. C1017 - C1027 (2018)
In this project we conduct together with Dr. Sandlöbes at RWTH Aachen and the department of Prof. Neugebauer ab initio calculations for designing new Mg – Li alloys. Ab initio calculations can accurately predict basic structural, mechanical, and functional properties using only the atomic composition as a basis.
The wide tunability of the fundamental electronic bandgap by size control is a key attribute of semiconductor nanocrystals, enabling applications spanning from biomedical imaging to optoelectronic devices. At finite temperature, exciton-phonon interactions are shown to exhibit a strong impact on this fundamental property.
Oxides find broad applications as catalysts or in electronic components, however are generally brittle materials where dislocations are difficult to activate in the covalent rigid lattice. Here, the link between plasticity and fracture is critical for wide-scale application of functional oxide materials.
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.
Efficient harvesting of sunlight and (photo-)electrochemical conversion into solar fuels is an emerging energy technology with enormous promise. Such emerging technologies depend critically on materials systems, in which the integration of dissimilar components and the internal interfaces that arise between them determine the functionality.
Enabling a ‘hydrogen economy’ requires developing fuel cells satisfying economic constraints, reasonable operating costs and long-term stability. The fuel cell is an electrochemical device that converts chemical energy into electricity by recombining water from H2 and O2, allowing to generate environmentally-friendly power for e.g. cars or houses…
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…