Atomically dispersed Fe immobilized within N-doped carbon nanosheets (Fe-SA) is successfully synthesized. The optimal Fe-SA catalyst achieves a high faradaic efficiency of ca. 90% for CO2 electroreduction toward CO at a low overpotential of 0.47 V. A series of controlled tests show that there is a synergistic effect between the Fe centers and the pyrrolic-N-C framework which facilitates catalytic activity. Specifically, pyrrolic-N-C sites with high local electron density increase the initial CO2 adsorption while positively charged Fe enhances the water dissociation to provide a proton source for further CO2 reduction
International audienceCO2 electroreduction to CO is an attractive strategy for using CO2 as a feedst...
The increasing release of carbon dioxide into atmosphere has caused serious environmental consequenc...
Pyrolysis of chitosan containing various loadings of Co and Fe renders Co-Fe alloy nanoparticles sup...
Atomically dispersed Fe immobilized within N-doped carbon nanosheets (Fe-SA) is successfully synthes...
International audienceSelective electrochemical reduction of CO2 into energy-dense organic compounds...
Electrochemical reduction of carbon dioxide (CO2) into chemicals and fuels has recently attracted mu...
Electrocatalytic CO2 reduction to CO is a sustainable process for energy conversion. However, this p...
Electrochemical reduction of CO2 (CO2RR) provides an attractive pathway to achieve a carbon-neutral ...
Mesoporous nitrogen-doped carbon nanoparticles with atomically dispersed iron sites (named mesoNC-Fe...
The electrochemical conversion of carbon dioxide (CO2) into renewable fuel offers a promising approa...
Iron-nitrogen-carbon (Fe-N-C) composite materials show considerable Faradaic efficiency for CO produ...
Electrochemical reduction of CO2 provides an opportunity to reach a carbon‐neutral energy recycling ...
In this work, we present a supramolecular template-derived synthesis approach combined with a carbon...
Abstract(#br)Electrocatalytic CO 2 reduction to CO is a sustainable process for energy conversion. H...
Simultaneously achieving high Faradaic efficiency, current density, and stability at low overpotenti...
International audienceCO2 electroreduction to CO is an attractive strategy for using CO2 as a feedst...
The increasing release of carbon dioxide into atmosphere has caused serious environmental consequenc...
Pyrolysis of chitosan containing various loadings of Co and Fe renders Co-Fe alloy nanoparticles sup...
Atomically dispersed Fe immobilized within N-doped carbon nanosheets (Fe-SA) is successfully synthes...
International audienceSelective electrochemical reduction of CO2 into energy-dense organic compounds...
Electrochemical reduction of carbon dioxide (CO2) into chemicals and fuels has recently attracted mu...
Electrocatalytic CO2 reduction to CO is a sustainable process for energy conversion. However, this p...
Electrochemical reduction of CO2 (CO2RR) provides an attractive pathway to achieve a carbon-neutral ...
Mesoporous nitrogen-doped carbon nanoparticles with atomically dispersed iron sites (named mesoNC-Fe...
The electrochemical conversion of carbon dioxide (CO2) into renewable fuel offers a promising approa...
Iron-nitrogen-carbon (Fe-N-C) composite materials show considerable Faradaic efficiency for CO produ...
Electrochemical reduction of CO2 provides an opportunity to reach a carbon‐neutral energy recycling ...
In this work, we present a supramolecular template-derived synthesis approach combined with a carbon...
Abstract(#br)Electrocatalytic CO 2 reduction to CO is a sustainable process for energy conversion. H...
Simultaneously achieving high Faradaic efficiency, current density, and stability at low overpotenti...
International audienceCO2 electroreduction to CO is an attractive strategy for using CO2 as a feedst...
The increasing release of carbon dioxide into atmosphere has caused serious environmental consequenc...
Pyrolysis of chitosan containing various loadings of Co and Fe renders Co-Fe alloy nanoparticles sup...