Publikationen von Fabian Scholten
Alle Typen
Zeitschriftenartikel (21)
1.
Zeitschriftenartikel
9 (12), S. 1485 - 1496 (2024)
Key intermediates and Cu active sites for CO2 electroreduction to ethylene and ethanol. Nature Energy 2.
Zeitschriftenartikel
12 (25), S. 15321 - 15333 (2024)
Elucidating interfacial parameters of platinum–palladium bulk alloy single crystals. Journal of Materials Chemistry A 3.
Zeitschriftenartikel
146 (14), S. 9665 - 9678 (2024)
Electrocatalytic Nitrate and Nitrite Reduction toward Ammonia using Cu2O Nanocubes: Active Species and Reaction Mechanisms. Journal of the American Chemical Society 4.
Zeitschriftenartikel
17 (5), S. 2046 - 2058 (2024)
Role of Fe Decoration on the Oxygen Evolving State of Co3O4 Nanocatalysts. Energy & Environmental Science 5.
Zeitschriftenartikel
9 (2), S. 644 - 652 (2024)
The Influence of Mesoscopic Surface Structure on the Electrocatalytic Selectivity of CO2 Reduction with UHV-Prepared Cu(111) Single Crystals. ACS Energy Letters 6.
Zeitschriftenartikel
12 (42), S. 14241 - 14253 (2021)
Plasma-assisted Oxidation of Cu(100) and Cu(111). Chemical Science 7.
Zeitschriftenartikel
60 (35), S. 19169 - 19175 (2021)
Identifying structure-selectivity correlations in the electrochemical reduction of CO2: a comparison of well-ordered atomically-clean and chemically-etched Cu single crystal surfaces. Angewandte Chemie International Edition 8.
Zeitschriftenartikel
133 (35), S. 19318 - 19324 (2021)
Identifying structure-selectivity correlations in the electrochemical reduction of CO2: a comparison of well-ordered atomically-clean and chemically-etched Cu single crystal surfaces. Angewandte Chemie 9.
Zeitschriftenartikel
92 (7), 074104 (2021)
Development of a single crystal sample holder for interfacing ultrahigh vacuum and electrochemical experimentation. Review of Scientific Instruments 10.
Zeitschriftenartikel
393, S. 247 - 258 (2021)
Pt-Sn-Co nanocubes as highly active catalysts for ethanol electro-oxidation. Journal of Catalysis 11.
Zeitschriftenartikel
10 (21), S. 12783 - 12789 (2020)
Assessing the Influence of Supercritical Carbon Dioxide on the Electrochemical Reduction to Formic Acid Using Carbon-Supported Copper Catalysts. ACS Catalysis 12.
Zeitschriftenartikel
59 (41), S. 17974 - 17983 (2020)
Electrocatalytic CO2 Reduction on CuOx Nanocubes: Tracking the Evolution of Chemical State, Geometric Structure, and Catalytic Selectivity using Operando Spectroscopy. Angewandte Chemie International Edition 13.
Zeitschriftenartikel
132 (41), S. 18130 - 18139 (2020)
Electrocatalytic CO2 Reduction on CuOx Nanocubes: Tracking the Evolution of Chemical State, Geometric Structure, and Catalytic Selectivity using Operando Spectroscopy. Angewandte Chemie 14.
Zeitschriftenartikel
5 (4), S. 317 - 325 (2020)
The role of in situ generated morphological motifs and Cu(I) species in C2+ product selectivity during CO2 pulsed electroreduction. Nature Energy 15.
Zeitschriftenartikel
141 (50), S. 19879 - 19887 (2019)
Operando Insight into the Correlation between the Structure and Composition of CuZn Nanoparticles and their Selectivity for the Electrochemical CO2 Reduction. Journal of the American Chemical Society 16.
Zeitschriftenartikel
58 (47), S. 17047 - 17053 (2019)
Selective CO2 Electroreduction to Ethylene and Multicarbon Alcohols via Electrolyte-Driven Nanostructuring. Angewandte Chemie International Edition 17.
Zeitschriftenartikel
131 (47), S. 17203 - 17209 (2019)
Selective CO2 Electroreduction to Ethylene and Multicarbon Alcohols via Electrolyte-Driven Nanostructuring. Angewandte Chemie 18.
Zeitschriftenartikel
9 (6), S. 5496 - 5502 (2019)
Plasma-Modified Dendritic Cu Catalyst for CO2 Electroreduction. ACS Catalysis 19.
Zeitschriftenartikel
141 (13), S. 5261 - 5266 (2019)
Enhanced Stability and CO/Formate Selectivity of Plasma-Treated SnOx/AgOx Catalysts during CO2 Electroreduction. Journal of the American Chemical Society 20.
Zeitschriftenartikel
8 (11), S. 10012 - 10020 (2018)
Activity and Selectivity Control in CO2 Electroreduction to Multicarbon Products over CuOx Catalysts via Electrolyte Design. ACS Catalysis