Despite tremendous importance in catalysis, the design and improvement of the oxide- metal interface has been hampered by the limited understanding on the nature of interfacial sites, as well as the oxide-metal interaction (OMI). Through the construction of well-defined Cu2O-Pt, Cu2O-Ag, Cu2O-Au interfaces, we found that Cu2O Nanostructures (NSs) on Pt exhibit much lower thermal stability than on Ag and Au, although they show the same surface and edge structures, as identified by element-specific scanning tunneling microscopy (ES-STM) images. The activities of the Cu2O-Pt and Cu2O-Au interfaces for CO oxidation were further compared at the atomic scale and showed in general that the interface with Cu2O NSs could annihilate the CO-poisoning ...
We find that nearly monodisperse copper oxide nanoparticles prepared via the thermal decomposition o...
Understanding the structure-activity relationship over silica-supported Au-based bimetallic nanocata...
Understanding the structure-activity relationship over silica-supported Au-based bimetallic nanocata...
Solid materials can exhibit very different surface catalytic properties depending on the exposed sur...
Solid materials can exhibit very different surface catalytic properties depending on the exposed sur...
Solid materials can exhibit very different surface catalytic properties depending on the exposed sur...
Solid materials can exhibit very different surface catalytic properties depending on the exposed sur...
Solid materials can exhibit very different surface catalytic properties depending on the exposed sur...
ABSTRACT: DFT+U calculations of the structure of CeO2(111)-supported Au-based bimetallic nanocluster...
Creation of substrate-accessible interfacial defect sites will bring about new catalytic discoveries...
Surface lattice oxygen in metal oxides is a common participant in many chemical reactions. Given thi...
Surface lattice oxygen in metal oxides is a common participant in many chemical reactions. Given thi...
Surface lattice oxygen in metal oxides is a common participant in many chemical reactions. Given thi...
Surface lattice oxygen in metal oxides is a common participant in many chemical reactions. Given thi...
Surface lattice oxygen in metal oxides is a common participant in many chemical reactions. Given thi...
We find that nearly monodisperse copper oxide nanoparticles prepared via the thermal decomposition o...
Understanding the structure-activity relationship over silica-supported Au-based bimetallic nanocata...
Understanding the structure-activity relationship over silica-supported Au-based bimetallic nanocata...
Solid materials can exhibit very different surface catalytic properties depending on the exposed sur...
Solid materials can exhibit very different surface catalytic properties depending on the exposed sur...
Solid materials can exhibit very different surface catalytic properties depending on the exposed sur...
Solid materials can exhibit very different surface catalytic properties depending on the exposed sur...
Solid materials can exhibit very different surface catalytic properties depending on the exposed sur...
ABSTRACT: DFT+U calculations of the structure of CeO2(111)-supported Au-based bimetallic nanocluster...
Creation of substrate-accessible interfacial defect sites will bring about new catalytic discoveries...
Surface lattice oxygen in metal oxides is a common participant in many chemical reactions. Given thi...
Surface lattice oxygen in metal oxides is a common participant in many chemical reactions. Given thi...
Surface lattice oxygen in metal oxides is a common participant in many chemical reactions. Given thi...
Surface lattice oxygen in metal oxides is a common participant in many chemical reactions. Given thi...
Surface lattice oxygen in metal oxides is a common participant in many chemical reactions. Given thi...
We find that nearly monodisperse copper oxide nanoparticles prepared via the thermal decomposition o...
Understanding the structure-activity relationship over silica-supported Au-based bimetallic nanocata...
Understanding the structure-activity relationship over silica-supported Au-based bimetallic nanocata...