催化作用
耐久性
化学
化学工程
平衡(能力)
碱度
无机化学
多相催化
曲面(拓扑)
材料科学
作者
Li Jiao,Nicolas Donzel,M. Dupont,Frédéric Lecoeur,Frédéric Jaouen
标识
DOI:10.1021/acscatal.6c00786
摘要
Ammonium halide-assisted treatments have been widely employed to enhance the performance of Fe−N−C catalysts. However, the underlying reconstruction chemistry and its impact on active site microenvironments remain poorly understood. Here, we present a post-synthetic reconstruction strategy in which controlled NH4Cl thermolysis enables simultaneous modulation of carbon microstructure and nitrogen surface chemistry in pre-formed Fe−N−C catalysts. In situ thermogravimetry−mass spectrometry reveals that NH4Cl decomposes into NH3 and HCl over distinct temperature regimes, driving coupled nitrogen functionalization and preferential carbon etching while preserving atomic Fe−N4 coordination. This balanced reconstruction generates hierarchical porosity and moderately increased nitrogen basicity, markedly enhancing Fe−N4 site accessibility and intrinsic activity without inducing the excessive basicity and structural degradation typically associated with NH3 treatment. As a result, NH4Cl-treated catalysts exhibit significantly improved oxygen reduction activity and durability in proton exchange membrane fuel cells under both H2/O2 and H2/air operation, outperforming the untreated Fe−N−C catalyst and the same material after pyrolysis under pure NH3 flow. By explicitly linking ammonium halide decomposition pathways to microstructure evolution, surface basicity, and operational stability, this work establishes post-synthetic ammonium halide thermolysis as a rational approach for optimizing the activity−durability balance in Fe−N−C and related M−N−C electrocatalysts.
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