Publications of Robert Schlögl
All genres
Journal Article (1089)
81.
Journal Article
R. Schlögl: Expanding the frontiers of hydrogen evolution electrocatalysis-searching for the origins of electrocatalytic activity in the anomalies of the conventional model. Electrochimica Acta 388, 138583 (2021).
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Journal Article
R. Schlögl and : Methane Pyrolysis for Zero-Emission Hydrogen Production: A Potential Bridge Technology from Fossil Fuels to a Renewable and Sustainable Hydrogen Economy. Industrial and Engineering Chemistry Research 60 (32), 11855–11881 (2021).
, 83.
Journal Article
Velasco Vélez, J., E. Carbonio, , , , , M. Hävecker, , M. Plodinec, , , , L. Falling, R. Mom, , R. Schlögl, A. Knop-Gericke and T. Jones: Surface Electron-Hole Rich Species Active in the Electrocatalytic Water Oxidation. Journal of the American Chemical Society 143 (32), 12524–12534 (2021).
84.
Journal Article
Huang, X., T. Jones, , R. Farra, , R. Schlögl and M.G. Willinger: Phase Coexistence and Structural Dynamics of Redox Metal Catalysts Revealed by Operando TEM. Advanced Materials 33 (31), 2101772 (2021).
85.
Journal Article
Huang, X., T. Jones, , R. Farra, , R. Schlögl and M.G. Willinger: Cover Picture: Phase Coexistence and Structural Dynamics of Redox Metal Catalysts Revealed by Operando TEM (Adv. Mater. 31/2021). Advanced Materials 33 (31), 2170239 (2021).
86.
Journal Article
R. Schlögl and : Determination of trace compounds and artifacts in nitrogen background measurements by proton transfer reaction time-of-flight mass spectrometry under dry and humid conditions. Journal of Mass Spectrometry 56 (8), e4777 (2021).
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Journal Article
X. Huang, , , , , , , , R. Schlögl, and : Coordination Number-Dependent Complete Oxidation of Methane on NiO Catalysts. ACS Catalysis 11 (15), 9837–9849 (2021).
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Journal Article
R. Schlögl, and : Is direct seawater splitting economically meaningful? Energy & Environmental Science 14 (7), 3679–3685 (2021).
, 89.
Journal Article
R. Schlögl, and : Inelastic electron scattering by the gas phase in near ambient pressure XPS measurements. Surface and Interface Analysis 53 (7), 605–617 (2021).
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Journal Article
R. Schlögl: The Effect of Iron Impurities on Transition Metal Catalysts for the Oxygen Evolution Reaction in Alkaline Environment: Activity Mediators or Active Sites? Catalysis Letters 151 (7), 1843–1856 (2021).
, , and 91.
Journal Article
Fan, H., , , F. Girgsdies, , , , , , R. Schlögl, E. Frei and X. Huang: Ultrathin 2D Fe-Nanosheets Stabilized by 2D Mesoporous Silica: Synthesis and Application in Ammonia Synthesis. ACS Applied Materials and Interfaces 13 (25), 30187–30197 (2021).
92.
Journal Article
R. Schlögl and : Tuning of Reciprocal Carbon-Electrode Properties for an Optimized Hydrogen Evolution. ChemSusChem 14 (12), 2547–2553 (2021).
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Journal Article
94.
Journal Article
T. Jones, , F. Schmidt, R. Schlögl and : Isolated Pd atoms in a silver matrix: Spectroscopic and chemical properties. The Journal of Chemical Physics 154 (18), 184703 (2021).
, , 95.
Journal Article
R. Schlögl and : Effect of the Co-cation on Cu Speciation in Cu-Exchanged Mordenite and ZSM-5 Catalysts for the Oxidation of Methane to Methanol. ACS Catalysis 11 (9), 4973–4987 (2021).
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Journal Article
R. Schlögl and : Surface composition of AgPd single-atom alloy catalyst in an oxidative environment. The Journal of Chemical Physics 154 (17), 174708 (2021).
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Journal Article
Chee, S.W., T. Lunkenbein, R. Schlögl and B. Roldan Cuenya: In situ and operando electron microscopy in heterogeneous catalysis - insights into multi-scale chemical dynamics. Journal of Physics: Condensed Matter 33 (15), 153001 (2021).
98.
Journal Article
M. Plodinec, , , , R. Schlögl, and : Tuning the Rh–FeOx Interface in Ethanol Synthesis through Formation Phase Studies at High Pressures of Synthesis Gas. ACS Catalysis 11 (7), 4047–4060 (2021).
, 99.
Journal Article
A. Trunschke, R. Schlögl, and : Combinatorial optimization and synthesis of multiple promoted MoVNbTe catalysts for oxidation of propane to acrylic acid. Catalysis Today 363, 45–54 (2021).
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Journal Article
Schlögl, R.: Chemical energy storage enables the transformation of fossil energy systems to sustainability. Green Chemistry 23 (4), 1584–1593 (2021).