Electrochemical liquid cell transmission electron microscopy (TEM) is a unique technique for probing nanocatalyst behavior during operation for a range of different electrocatalytic processes, including hydrogen evolution reaction (HER), oxygen evolution reaction (OER), oxygen reduction reaction (ORR), or electrochemical CO2 reduction (eCO(2)R). A major challenge to the technique's applicability to these systems has to do with the choice of substrate, which requires a wide inert potential range for quantitative electrochemistry, and is also responsible for minimizing background gas generation in the confined microscale environment. Here, we report on the feasibility of electrochemical experiments using the standard redox couple Fe(CN)(6)(3-...
The electrochemical reduction of carbon dioxide (CO2RR) requires access to ample gaseous CO2and liqu...
Renewable energy generation is the first step in combatting climate change, but to move to a true ca...
This study demonstrates how the potentiometric mode of the scanning electrochemical microscope (SECM...
The foreseeable worldwide energy and environmental challenges demand renewable alternative sources, ...
The design and synthesis of nanocatalysts with well-defined sizes, compositions, and structures have...
International audienceIn this project, we use Scanning ElectroChemical Microscopy (SECM) [1] to inve...
Liquid cell electron microscopy enables the study of nanoscale transformations in solvents with high...
The biocatalytic electroreduction of oxygen has been studied on large surface area graphite and Vulc...
Identical location electron microscopy (IL-EM) offers a unique opportunity to track the morphologica...
International audienceThe influence of surface chemistry on heterogeneous electron transfer at activ...
The oxygen evolution reaction involves complex interplay among electrolyte, solid catalyst, and gas-...
Redox flow batteries (RFBs) are a promising electrochemical technology for the efficient and reliabl...
Redox flow batteries are attractive for large-scale electrochemical energy storage, but sluggish ele...
Numerous insights of the structure–electrochemical activity relationship of nanocatalysts have been ...
The current work deals with the development of scanning electrochemical microscopy (SECM) as a produ...
The electrochemical reduction of carbon dioxide (CO2RR) requires access to ample gaseous CO2and liqu...
Renewable energy generation is the first step in combatting climate change, but to move to a true ca...
This study demonstrates how the potentiometric mode of the scanning electrochemical microscope (SECM...
The foreseeable worldwide energy and environmental challenges demand renewable alternative sources, ...
The design and synthesis of nanocatalysts with well-defined sizes, compositions, and structures have...
International audienceIn this project, we use Scanning ElectroChemical Microscopy (SECM) [1] to inve...
Liquid cell electron microscopy enables the study of nanoscale transformations in solvents with high...
The biocatalytic electroreduction of oxygen has been studied on large surface area graphite and Vulc...
Identical location electron microscopy (IL-EM) offers a unique opportunity to track the morphologica...
International audienceThe influence of surface chemistry on heterogeneous electron transfer at activ...
The oxygen evolution reaction involves complex interplay among electrolyte, solid catalyst, and gas-...
Redox flow batteries (RFBs) are a promising electrochemical technology for the efficient and reliabl...
Redox flow batteries are attractive for large-scale electrochemical energy storage, but sluggish ele...
Numerous insights of the structure–electrochemical activity relationship of nanocatalysts have been ...
The current work deals with the development of scanning electrochemical microscopy (SECM) as a produ...
The electrochemical reduction of carbon dioxide (CO2RR) requires access to ample gaseous CO2and liqu...
Renewable energy generation is the first step in combatting climate change, but to move to a true ca...
This study demonstrates how the potentiometric mode of the scanning electrochemical microscope (SECM...