Single-atom metal–nitrogen–carbon (M–N–C) catalysts have sparked intense interests, but the catalytic contribution of N-bonding environment neighboring M–N4 sites lacks attention. Herein, a series of Fe–N–C nanoarchitectures have been prepared, which confer adjustable numbers of atomically dispersed Fe–N4 sites, tunable hierarchical micro-mesoporous structures and intensified exposure of interior active sites. The optimization between Fe–N4 single sites and carbon matrix delivers superior oxygen reduction reaction activity (half-wave potential of 0.915 V vs RHE in alkaline medium) with remarkable stability and high atom-utilization efficiency (almost 10-fold enhancement). Both experiments and theoretical calculations verified the selective ...
Iron and nitrogen codoped carbons (Fe–N–C) have attracted increasingly greater attention as electroc...
Designing atomically dispersed metal catalysts for oxygen reduction reaction (ORR) is a promising ap...
Single-atom catalysts with maximum metal utilization efficiency show great potential for sustainable...
© 2020 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim Controllably constructing nitrogen-modified divaca...
Controllably constructing nitrogen-modified divacancies (ND) in carbon substrates to immobilize atom...
Structural engineering of atomic-scaled metal/N–C catalysts is crucial yet challenging in enhancing ...
An Fe–N–C catalyst with an FeN4 active moiety has gained ever-increasing attention for the oxygen re...
Supplementary files for article Atomically dispersed Fe-N4 modified with precisely located S for hig...
The development of low-cost, efficient, and stable electrocatalysts toward the oxygen reduction reac...
The rational design of highly efficient, low-cost, and durable electrocatalysts to replace platinum-...
Immobilizing metal atoms by multiple nitrogen atoms has triggered exceptional catalytic activity tow...
Single Fe atom dispersed carbon nanostructures show promising oxygen reduction reaction (ORR) activi...
Developing highly efficient, low-cost oxygen reduction catalysts, especially in acidic medium, is of...
Single-atom catalysts, in particular the Fe–N–C family of materials, have emerged as a promising alt...
Single atom catalysts (SACs) are of great importance for oxygen reduction, a critical process in ren...
Iron and nitrogen codoped carbons (Fe–N–C) have attracted increasingly greater attention as electroc...
Designing atomically dispersed metal catalysts for oxygen reduction reaction (ORR) is a promising ap...
Single-atom catalysts with maximum metal utilization efficiency show great potential for sustainable...
© 2020 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim Controllably constructing nitrogen-modified divaca...
Controllably constructing nitrogen-modified divacancies (ND) in carbon substrates to immobilize atom...
Structural engineering of atomic-scaled metal/N–C catalysts is crucial yet challenging in enhancing ...
An Fe–N–C catalyst with an FeN4 active moiety has gained ever-increasing attention for the oxygen re...
Supplementary files for article Atomically dispersed Fe-N4 modified with precisely located S for hig...
The development of low-cost, efficient, and stable electrocatalysts toward the oxygen reduction reac...
The rational design of highly efficient, low-cost, and durable electrocatalysts to replace platinum-...
Immobilizing metal atoms by multiple nitrogen atoms has triggered exceptional catalytic activity tow...
Single Fe atom dispersed carbon nanostructures show promising oxygen reduction reaction (ORR) activi...
Developing highly efficient, low-cost oxygen reduction catalysts, especially in acidic medium, is of...
Single-atom catalysts, in particular the Fe–N–C family of materials, have emerged as a promising alt...
Single atom catalysts (SACs) are of great importance for oxygen reduction, a critical process in ren...
Iron and nitrogen codoped carbons (Fe–N–C) have attracted increasingly greater attention as electroc...
Designing atomically dispersed metal catalysts for oxygen reduction reaction (ORR) is a promising ap...
Single-atom catalysts with maximum metal utilization efficiency show great potential for sustainable...