The variation in the morphology and electronic structure of copper during the electroreduction of CO2 into valuable hydrocarbons and alcohols was revealed by combining in situ surface- and bulk-sensitive X-ray spectroscopies with electrochemical scanning electron microscopy. These experiments proved that the electrified interface surface and near-surface are dominated by reduced copper. The selectivity to the formation of the key C–C bond is enhanced at higher cathodic potentials as a consequence of increased copper metallicity. In addition, the reduction of the copper oxide electrode and oxygen loss in the lattice reconstructs the electrode to yield a rougher surface with more uncoordinated sites, which controls the dissociation barrier of...
Catalyst degradation and product selectivity changes are two of the key challenges in the electroche...
Catalyst degradation and product selectivity changes are two of the key challenges in the electroche...
Electrochemical AFM is a powerful tool for the real‐space characterization of catalysts under realis...
The variation in the morphology and electronic structure of copper during the electroreduction of CO...
The variation in the morphology and electronic structure of copper during the electroreduction of CO...
The variation in the morphology and electronic structure of copper during the electroreduction of CO...
The variation in the morphology and electronic structure of copper during the electroreduction of CO...
The variation in the morphology and electronic structure of copper during the electroreduction of CO...
The variation in the morphology and electronic structure of copper during the electroreduction of CO...
Revealing the active nature of oxide-derived copper is of key importance to understand its remarkabl...
Revealing the active nature of oxide-derived copper is of key importance to understand its remarkabl...
Revealing the active nature of oxide-derived copper is of key importance to understand its remarkabl...
Revealing the active nature of oxide derived copper (OD-Cu) is of key importance to understand its r...
Redox-active copper catalysts with accurately prepared oxidation states (Cu0, Cu+ and Cu2+) and high...
Redox-active copper catalysts with accurately prepared oxidation states (Cu0, Cu+ and Cu2+) and high...
Catalyst degradation and product selectivity changes are two of the key challenges in the electroche...
Catalyst degradation and product selectivity changes are two of the key challenges in the electroche...
Electrochemical AFM is a powerful tool for the real‐space characterization of catalysts under realis...
The variation in the morphology and electronic structure of copper during the electroreduction of CO...
The variation in the morphology and electronic structure of copper during the electroreduction of CO...
The variation in the morphology and electronic structure of copper during the electroreduction of CO...
The variation in the morphology and electronic structure of copper during the electroreduction of CO...
The variation in the morphology and electronic structure of copper during the electroreduction of CO...
The variation in the morphology and electronic structure of copper during the electroreduction of CO...
Revealing the active nature of oxide-derived copper is of key importance to understand its remarkabl...
Revealing the active nature of oxide-derived copper is of key importance to understand its remarkabl...
Revealing the active nature of oxide-derived copper is of key importance to understand its remarkabl...
Revealing the active nature of oxide derived copper (OD-Cu) is of key importance to understand its r...
Redox-active copper catalysts with accurately prepared oxidation states (Cu0, Cu+ and Cu2+) and high...
Redox-active copper catalysts with accurately prepared oxidation states (Cu0, Cu+ and Cu2+) and high...
Catalyst degradation and product selectivity changes are two of the key challenges in the electroche...
Catalyst degradation and product selectivity changes are two of the key challenges in the electroche...
Electrochemical AFM is a powerful tool for the real‐space characterization of catalysts under realis...