Atomically Dispersed Fe-N4 Modified with Precisely Located S for Highly Efficient Oxygen Reduction

部分 催化作用 密度泛函理论 电化学 金属 基质(水族馆) 氧气 吸收(声学) 材料科学 氧化还原 兴奋剂 解吸 硫黄 化学 结晶学 无机化学 电极 物理化学 计算化学 立体化学 有机化学 吸附 复合材料 地质学 海洋学 光电子学
作者
Yin Jia,Xuya Xiong,Danni Wang,Xinxuan Duan,Kai Sun,Yajie Li,Lirong Zheng,Wen‐Feng Lin,Mingdong Dong,Guoxin Zhang,Wen Liu,Xiaoming Sun
出处
期刊:Nano-micro Letters [Springer Science+Business Media]
卷期号:12 (1) 被引量:126
标识
DOI:10.1007/s40820-020-00456-8
摘要

Abstract Immobilizing metal atoms by multiple nitrogen atoms has triggered exceptional catalytic activity toward many critical electrochemical reactions due to their merits of highly unsaturated coordination and strong metal-substrate interaction. Herein, atomically dispersed Fe-NC material with precise sulfur modification to Fe periphery (termed as Fe-NSC) was synthesized, X-ray absorption near edge structure analysis confirmed the central Fe atom being stabilized in a specific configuration of Fe(N 3 )(N–C–S). By enabling precisely localized S doping, the electronic structure of Fe-N 4 moiety could be mediated, leading to the beneficial adjustment of absorption/desorption properties of reactant/intermediate on Fe center. Density functional theory simulation suggested that more negative charge density would be localized over Fe-N 4 moiety after S doping, allowing weakened binding capability to *OH intermediates and faster charge transfer from Fe center to O species. Electrochemical measurements revealed that the Fe-NSC sample exhibited significantly enhanced oxygen reduction reaction performance compared to the S-free Fe-NC material (termed as Fe-NC), showing an excellent onset potential of 1.09 V and half-wave potential of 0.92 V in 0.1 M KOH. Our work may enlighten relevant studies regarding to accessing improvement on the catalytic performance of atomically dispersed M-NC materials by managing precisely tuned local environments of M-N x moiety.
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