Membrane electrode assemblies enable CO2 electrolysis at industrially relevant rates, yet their operational stability is often limited by formation of solid precipitates in the cathode pores, triggered by cation crossover from the anolyte due to imperfect ion exclusion by anion exchange membranes. Here we show that anolyte concentration affects the degree of cation movement through the membranes, and this substantially influences the behaviors of copper catalysts in catholyte-free CO2 electrolysers. Systematic variation of the anolyte (KOH or KHCO3) ionic strength produced a distinct switch in selectivity between either predominantly CO or C2+ products (mainly C2H4) which closely correlated with the quantity of alkali metal cation (K+) cros...
Copper is among the most studied electrocatalyst for CO2 conversion due to its remarkable ability to...
Over the past decade, electrochemical carbon dioxide reduction has become a thriving area of researc...
A zero-gap membrane-electrode assembly (MEA) electrolyzer is a promising design for electrochemical ...
The electrochemical reduction of CO2 is known to be influenced by the identity of the alkali metal c...
The electrochemical reduction of CO2 is known to be influenced by the concentration and identity of ...
Interactions of electrolyte ions at electrocatalyst surfaces influence the selectivity of electroche...
The electrocatalytic reduction of carbon dioxide is widely studied for the sustainable production of...
The electrochemical reduction of CO_2 is known to be influenced by the identity of the alkali metal ...
Dataset for the publication "Unintended cation crossover influences CO2 reduction selectivity in Cu-...
The linear scaling relationship of the binding energies of different intermediates limits the cataly...
Electrolyte cation size is known to influence the electrochemical reduction of CO2 over metals; howe...
Advancing reaction rates for electrochemical CO2 reduction in membrane electrode assemblies (MEAs) h...
Electrolyte cation size is known to influence the electrochemical reduction of CO2 over metals; howe...
Adsorbed CO is a critical intermediate in the electrocatalytic reduction of CO2 to fuels. Directed d...
The electrochemical reduction of CO2 offers a potential means for producing carbon-neutral fuels and...
Copper is among the most studied electrocatalyst for CO2 conversion due to its remarkable ability to...
Over the past decade, electrochemical carbon dioxide reduction has become a thriving area of researc...
A zero-gap membrane-electrode assembly (MEA) electrolyzer is a promising design for electrochemical ...
The electrochemical reduction of CO2 is known to be influenced by the identity of the alkali metal c...
The electrochemical reduction of CO2 is known to be influenced by the concentration and identity of ...
Interactions of electrolyte ions at electrocatalyst surfaces influence the selectivity of electroche...
The electrocatalytic reduction of carbon dioxide is widely studied for the sustainable production of...
The electrochemical reduction of CO_2 is known to be influenced by the identity of the alkali metal ...
Dataset for the publication "Unintended cation crossover influences CO2 reduction selectivity in Cu-...
The linear scaling relationship of the binding energies of different intermediates limits the cataly...
Electrolyte cation size is known to influence the electrochemical reduction of CO2 over metals; howe...
Advancing reaction rates for electrochemical CO2 reduction in membrane electrode assemblies (MEAs) h...
Electrolyte cation size is known to influence the electrochemical reduction of CO2 over metals; howe...
Adsorbed CO is a critical intermediate in the electrocatalytic reduction of CO2 to fuels. Directed d...
The electrochemical reduction of CO2 offers a potential means for producing carbon-neutral fuels and...
Copper is among the most studied electrocatalyst for CO2 conversion due to its remarkable ability to...
Over the past decade, electrochemical carbon dioxide reduction has become a thriving area of researc...
A zero-gap membrane-electrode assembly (MEA) electrolyzer is a promising design for electrochemical ...