A zero-gap membrane-electrode assembly (MEA) electrolyzer is a promising design for electrochemical CO2 reduction reactions (eCO(2)RRs), where gaseous CO2 is directly fed without catholyte. The zero-gap junction between the catalyst and the membrane can have distinct chemical environments and mass transfer properties from the conventional H-type cell but is rarely studied. In this work, we designed an integrated experimental-simulation study in MEA to understand the zero-gap junction and factors to determine the eCO(2)RR activity to multi-carbon production. We developed a simple synchronous ionomer/catalyst activation step under alkaline conditions to form jagged CuO nanoparticles whose unique morphological evolution facilitates the C2+ che...
Electrochemical CO2 reduction (eCO2RR) towards value-added chemicals, powered by renewable electrici...
We report the results of experimental and theoretical studies aimed at developing a detailed underst...
The efficient electrochemical conversion of CO2 to fuels or stock chemicals with high-energy density...
The electrochemical reduction of CO2 to ethylene has the potential to reduce greenhouse gas emission...
Copper-based membrane-electrode assemblies (Cu-MEAs) hold promise for increasing the energy efficien...
The electrochemical reduction of carbon dioxide (CO2R) driven by renewably generated electricity (e....
Electrochemical conversion of gaseous CO2 to value-added products and fuels is a promising approach ...
The global concern of the increasing levels of CO2 is growing quickly in the recent years. Therefore...
The electrochemical conversion of carbon dioxide is of increasing interest because it offers a means...
Summary: Membrane electrode assembly (MEA) electrolyzers can perform stable, high-rate carbon dioxid...
The electrochemical reduction of CO2 (CO2RR) on silver catalysts has been demonstrated under elevate...
Electro-conversion of carbon dioxide (CO2) into valuable chemicals is an efficient method to deal wi...
Membrane-electrode assemblies (MEAs) are an attractive cell design for the electrochemical reduction...
The development of high-performance CO2 electrolyzers is crucial for accelerating the sustainable pr...
Gas-diffusion electrodes (GDEs) for electrochemical CO2 reduction allow for an order-of-magnitude in...
Electrochemical CO2 reduction (eCO2RR) towards value-added chemicals, powered by renewable electrici...
We report the results of experimental and theoretical studies aimed at developing a detailed underst...
The efficient electrochemical conversion of CO2 to fuels or stock chemicals with high-energy density...
The electrochemical reduction of CO2 to ethylene has the potential to reduce greenhouse gas emission...
Copper-based membrane-electrode assemblies (Cu-MEAs) hold promise for increasing the energy efficien...
The electrochemical reduction of carbon dioxide (CO2R) driven by renewably generated electricity (e....
Electrochemical conversion of gaseous CO2 to value-added products and fuels is a promising approach ...
The global concern of the increasing levels of CO2 is growing quickly in the recent years. Therefore...
The electrochemical conversion of carbon dioxide is of increasing interest because it offers a means...
Summary: Membrane electrode assembly (MEA) electrolyzers can perform stable, high-rate carbon dioxid...
The electrochemical reduction of CO2 (CO2RR) on silver catalysts has been demonstrated under elevate...
Electro-conversion of carbon dioxide (CO2) into valuable chemicals is an efficient method to deal wi...
Membrane-electrode assemblies (MEAs) are an attractive cell design for the electrochemical reduction...
The development of high-performance CO2 electrolyzers is crucial for accelerating the sustainable pr...
Gas-diffusion electrodes (GDEs) for electrochemical CO2 reduction allow for an order-of-magnitude in...
Electrochemical CO2 reduction (eCO2RR) towards value-added chemicals, powered by renewable electrici...
We report the results of experimental and theoretical studies aimed at developing a detailed underst...
The efficient electrochemical conversion of CO2 to fuels or stock chemicals with high-energy density...