Fe–N–C catalysts are very promising materials for fuel cells and metal–air batteries. This work gives fundamental insights into the structural composition of an Fe–N–C catalyst and highlights the importance of an in‐depth characterization. By nuclear‐ and electron‐resonance techniques, we are able to show that even after mild pyrolysis and acid leaching, the catalyst contains considerable fractions of α‐iron and, surprisingly, iron oxide. Our work makes it questionable to what extent FeN4 sites can be present in Fe–N–C catalysts prepared by pyrolysis at 900 °C and above. The simulation of the iron partial density of phonon states enables the identification of three FeN4 species in our catalyst, one of them comprising a sixfold coordination ...
Atomically dispersed transition metal-nitrogen-carbon catalysts are emerging as low-cost electrocata...
Atomically dispersed transition metal-nitrogen-carbon catalysts are emerging as low-cost electrocata...
The development of active and durable non-precious metal-based oxygen reduction reaction (ORR) catal...
Dieser Beitrag ist mit Zustimmung des Rechteinhabers aufgrund einer (DFG geförderten) Allianz- bzw. ...
Iron-nitrogen-carbon materials have been known as the most promising non-noble metal catalyst for pr...
While Fe–N–C materials are a promising alternative to platinum for catalysing the oxygen reduction r...
The transition metal iron is a cheap and abundant element. It has a versatile chemistry, which makes...
5 pags., 2 figs., 2 tabs.The study of non-precious metal catalysts (NPMCs) as alternatives to platin...
Catalyst systems for fuel cell applications are an important and auspicious aspect to turn the fossi...
International audiencePyrolyzed Fe-N-C materials are promising platinum-group-metal-free catalysts f...
Fe-N-C catalysts synthesized by pyrolysis of Fe and N precursors have been intensively studied due t...
Fe based catalytic sites for the reduction of oxygen in acidic medium have been identified by 57Fe ...
We report novel structure–activity relationships and explore the chemical state and structure of cat...
Atomically dispersed transition metal-nitrogen-carbon catalysts are emerging as low-cost electrocata...
Atomically dispersed transition metal-nitrogen-carbon catalysts are emerging as low-cost electrocata...
The development of active and durable non-precious metal-based oxygen reduction reaction (ORR) catal...
Dieser Beitrag ist mit Zustimmung des Rechteinhabers aufgrund einer (DFG geförderten) Allianz- bzw. ...
Iron-nitrogen-carbon materials have been known as the most promising non-noble metal catalyst for pr...
While Fe–N–C materials are a promising alternative to platinum for catalysing the oxygen reduction r...
The transition metal iron is a cheap and abundant element. It has a versatile chemistry, which makes...
5 pags., 2 figs., 2 tabs.The study of non-precious metal catalysts (NPMCs) as alternatives to platin...
Catalyst systems for fuel cell applications are an important and auspicious aspect to turn the fossi...
International audiencePyrolyzed Fe-N-C materials are promising platinum-group-metal-free catalysts f...
Fe-N-C catalysts synthesized by pyrolysis of Fe and N precursors have been intensively studied due t...
Fe based catalytic sites for the reduction of oxygen in acidic medium have been identified by 57Fe ...
We report novel structure–activity relationships and explore the chemical state and structure of cat...
Atomically dispersed transition metal-nitrogen-carbon catalysts are emerging as low-cost electrocata...
Atomically dispersed transition metal-nitrogen-carbon catalysts are emerging as low-cost electrocata...
The development of active and durable non-precious metal-based oxygen reduction reaction (ORR) catal...