Yu, M.; Budiyanto, E.; Tüysüz, H. Principles of Water Electrolysis and Recent Progress of Cobalt, Nickel, and Iron-based Oxides for Oxygen Evolution Reaction. Angewandte Chemie International Edition2022, 61, e202103824.
Wang, C.; Bongard, H.-J.; Yu, M.; Schüth, F. Highly Ordered Mesoporous Co3O4 Electrocatalyst for Efficient, Selective, and Stable Oxidation of 5-Hydroxymethylfurfural to 2,5-Furandicarboxylic Acid. ChemSusChem2021, 14, 5199–5206.
Budiyanto, E.; Yu, M.; Chen, M.; DeBeer, S.; Rüdiger, O.; Tüysüz, H. Tailoring Morphology and Electronic Structure of Cobalt Iron Oxide Nanowires for Electrochemical Oxygen Evolution Reaction. ACS Applied Energy Materials2020, 3, 8583–8594.
Yu, M.; Moon, G.-H.; Castillo, R. G.; DeBeer, S.; Weidenthaler, C.; Tüysüz, H. Dual Role of Silver Moieties Coupled with Ordered Mesoporous Cobalt Oxide towards Electrocatalytic Oxygen Evolution Reaction. Angewandte Chemie International Edition2020, 59, 16544–16552.
Priamushko, T.; Guillet-Nicolas, R.; Yu, M.; Doyle, M.; Weidenthaler, C.; Tüysüz, H.; Kleitz, F. Nanocast Mixed Ni–Co–Mn Oxides with Controlled Surface and Pore Structure for Electrochemical Oxygen Evolution Reaction. ACS Applied Energy Materials2020, 3, 5597–5609.
Lorenz, J.; Yu, M.; Tüysüz, H.; Harms, C.; Dyck, A.; Wittstock, G. Coulometric Titration of Active Sites at Mesostructured Cobalt Oxide Spinel by Surface Interrogation Mode of Scanning Electrochemical Microscopy. The Journal of Physical Chemistry C2020, 124, 7737–7748.
Preiner, M.; Igarashi, K.; Muchowska, K. B.; Yu, M.; Varma, S. J.; Kleinermanns, K.; Nobu, M. K.; Kamagata, Y.; Tüysüz, H.; Moran, J.; Martin, W. F. A hydrogen-dependent geochemical analogue of primordial carbon and energy metabolism. Nature Ecology & Evolution2020, 4, 534–542.
Yu, M.; Belthle, K. S.; Tüysüz, C.; Tüysüz, H. Selective acid leaching: a simple way to engineer cobalt oxide nanostructures for the electrochemical oxygen evolution reaction. Journal of Materials Chemistry A2019, 7, 23130–23139.
Spanos, I.; Tesch, M. F.; Yu, M.; Tüysüz, H.; Zhang, J.; Feng, X.; Müllen, K.; Schlögl, R.; Mechler, A. K. Facile Protocol for Alkaline Electrolyte Purification and Its Influence on a Ni–Co Oxide Catalyst for the Oxygen Evolution Reaction. ACS Catalysis2019, 9, 8165–8170.
Moon, G.-H.; Yu, M.; Chan, C. K.; Tüysüz, H. Highly Active Cobalt-Based Electrocatalysts with Facile Incorporation of Dopants for the Oxygen Evolution Reaction. Angewandte Chemie International Edition2019, 58, 3491–3495.
Yu, M.; Moon, G.; Bill, E.; Tüysüz, H. Optimizing Ni–Fe Oxide Electrocatalysts for Oxygen Evolution Reaction by Using Hard Templating as a Toolbox. ACS Applied Energy Materials2019, 2, 1199–1209.
Yu, M.; Chan, C. K.; Tüysüz, H. Coffee-Waste Templating of Metal Ion-Substituted Cobalt Oxides for the Oxygen Evolution Reaction. ChemSusChem2018, 11, 605–611.
TU Dortmund und Pantazis-Gruppe weisen in Kollaborationsprojekt eine neue Klasse von organischer Verbindung mit neutralem, einfach gebundenen Kohlenstoffatom nach
Dr. Dimitrios Pantazis, Gruppenleiter am MPI für Kohlenforschung in der Abteilung für molekulare Theorie und Spektroskopie, ist zum Vizepräsidenten der QBIC Society gewählt worden.
Mit Hilfe von Multiskalen-Simulationsmethoden und modernsten quantenchemischen Berechnungen untersuchten Dr. Dimitrios Pantazis und seine Gruppe, wie die Energie des Sonnenlichts in den Elektronenfluss umgewandelt wird, der chemische Reaktionen antreibt.