Single-atom catalysts (SACs) featuring atomically dispersed metal cations covalently embedded in a carbon matrix show significant potential to achieve high catalytic performance in various electrocatalytic reactions. Although considerable advances have been achieved in their syntheses and electrochemical applications, further development and fundamental understanding are limited by a lack of strategies that can allow the quantitative analyses of their intrinsic catalytic characteristics, that is, active site density (SD) and turnover frequency (TOF). Here we show an in situ SD quantification method using a cyanide anion as a probe molecule. The decrease in cyanide concentration triggered by irreversible adsorption on metal-based active site...
Electrocatalytic processes will undoubtedly be at the heart of energising future transportation and ...
International audienceCatalytic active sites consisting in isolated metal single atoms can be found ...
Single-atom heterogeneous catalysts (SAC) represent the frontier in nanostructured catalyst design, ...
International audienceWhile supported metal nanoparticles cannot achieve full electrochemical utilis...
We report a comprehensive analysis of the catalytic oxygen reduction reaction (ORR) reactivity of fo...
The economic viability of low temperature fuel cells as clean energy devices is enhanced by the deve...
The development of non−Pt or carbon−based catalysts for anion exchange membrane fuel cells (AEMFCs) ...
Single-atom catalysts (SACs), specifically iron single atoms dispersed on nitrogen-doped carbon (Fe-...
Carbon materials doped with transition metal and nitrogen are highly active, non-precious metal cata...
The interest in single-atom catalysts (SACs) is increasing, as these materials have the ultimate lev...
Single-atom catalysts, in particular the Fe–N–C family of materials, have emerged as a promising alt...
ConspectusMetal clusters are very important as building blocks for nanoparticles (NPs) for electroca...
Single-atom catalysts, in particular the Fe–N–C family of materials, have emerged as a promising alt...
Mononuclear Fe ions ligated by nitrogen (FeNx) dispersed on nitrogen-doped carbon (Fe-N-C) serve as ...
The number of catalytically active sites (site density, SD) and the catalytic turnover frequency (TO...
Electrocatalytic processes will undoubtedly be at the heart of energising future transportation and ...
International audienceCatalytic active sites consisting in isolated metal single atoms can be found ...
Single-atom heterogeneous catalysts (SAC) represent the frontier in nanostructured catalyst design, ...
International audienceWhile supported metal nanoparticles cannot achieve full electrochemical utilis...
We report a comprehensive analysis of the catalytic oxygen reduction reaction (ORR) reactivity of fo...
The economic viability of low temperature fuel cells as clean energy devices is enhanced by the deve...
The development of non−Pt or carbon−based catalysts for anion exchange membrane fuel cells (AEMFCs) ...
Single-atom catalysts (SACs), specifically iron single atoms dispersed on nitrogen-doped carbon (Fe-...
Carbon materials doped with transition metal and nitrogen are highly active, non-precious metal cata...
The interest in single-atom catalysts (SACs) is increasing, as these materials have the ultimate lev...
Single-atom catalysts, in particular the Fe–N–C family of materials, have emerged as a promising alt...
ConspectusMetal clusters are very important as building blocks for nanoparticles (NPs) for electroca...
Single-atom catalysts, in particular the Fe–N–C family of materials, have emerged as a promising alt...
Mononuclear Fe ions ligated by nitrogen (FeNx) dispersed on nitrogen-doped carbon (Fe-N-C) serve as ...
The number of catalytically active sites (site density, SD) and the catalytic turnover frequency (TO...
Electrocatalytic processes will undoubtedly be at the heart of energising future transportation and ...
International audienceCatalytic active sites consisting in isolated metal single atoms can be found ...
Single-atom heterogeneous catalysts (SAC) represent the frontier in nanostructured catalyst design, ...