Fe-N-C catalysts, with a planar D symmetric FeN structure, show promising as noble metal-free oxygen reduction reaction catalysts. Nonetheless, the highly symmetric structure restricts the effective manipulation of its geometric and electronic structures, impeding further enhancements in oxygen reduction reaction performance. Here, a high proportion of asymmetric edge-carbon was successfully introduced into Fe-N-C catalysts through morphology engineering, enabling the precise modulation of the FeN active site. Electrochemical experimental results demonstrate that FeN@porous carbon (FeN@PC), featuring enriched asymmetric edge-FeN active sites, exhibits higher acidic oxygen reduction reaction catalytic activity compared to FeN@flaky carbon (FeN@FC), where symmetric FeN is primarily distributed within the basal-plane. Synchrotron X-ray absorption spectra, X-ray emission spectra, and theoretical calculations indicate that the enhanced oxygen reduction reaction catalytic activity of FeN@PC is attributed to the higher oxidation state of Fe species in the edge structure of FeN@PC. This finding paves the way for controlling the local geometric and electronic structures of single-atom active sites, leading to the development of novel and efficient Fe-N-C catalysts.

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http://dx.doi.org/10.1002/anie.202424135DOI Listing

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