化学
催化作用
离解(化学)
热解
氰化物
反应中间体
氧化物
合理设计
多相催化
配位复合体
分子动力学
化学反应
反应机理
光化学
有机化学
无机化学
动力学
从头算
化学工程
纳米颗粒
计算化学
组合化学
分解
化学合成
过程(计算)
作者
Dongxu Cao (1852894),Weishen Song,Meixi Zhang,Haoran Wang (272166),Na Yang (266025),Ji Yang (114503),Ruixuan Qin,Nanfeng Zheng (1525303)
出处
期刊:
[Figshare (United Kingdom)]
日期:2026-06-12
标识
DOI:10.1021/jacs.6c08417.s001
摘要
The rational synthesis of atomically dispersed iron–nitrogen–carbon (Fe–N–C) catalysts is hindered by the opacity of the high-temperature pyrolysis, in which the specific chemical drivers of active site formation remain elusive. Here, we employ a spatially separated chemical vapor pyrolysis strategy to decouple this process and probe the role of vapor-phase nitrogen-containing species in the evolution from iron oxide aggregates to isolated Fe–N4 sites. In this model system, HCN is found to be more effective than NH3 in promoting the disintegration of FeOx aggregates through the transient formation of FeCN intermediates. We further identify a synergistic process in which HCN facilitates FeOx aggregate dispersion, while Fe species reciprocally catalyze the dissociation of HCN, thereby accelerating the construction of nitrogen-rich support that stabilizes the dispersed Fe atoms. Spectroscopic analysis and ab initio molecular dynamics (AIMD) simulations collectively support this ligand-mediated atomization pathway and pinpoint the temperature onset of Fe–N4 formation at 800 °C. This method effectively deconvolutes the Fe–N4 formation from supremely complex pyrolysis processes, illuminating pathways for the controllable design of M–N–C catalysts.
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