催化作用
离解(化学)
化学
阴极
电子转移
氧气
无机化学
降水
氧化还原
化学工程
氧还原
X射线光电子能谱
氧还原反应
电催化剂
燃料电池
析氧
过渡金属
电极
光谱学
材料科学
电子结构
水的自电离
多相催化
密度泛函理论
分解水
作者
Cheng‐Kai Du,Xiongyi Liang,Fei‐Xiang Ma,Yuxia Li,Zheng‐Qi Liu,Long Ma,Zeng Li,Liang Zhen,Yan Huang,Xiao Cheng Zeng,Cheng‐Yan Xu
摘要
ABSTRACT Fe–N–C single‐atom catalysts (SACs) can deliver high activity for catalyzing the oxygen reduction reaction (ORR) in alkaline conditions. However, the sluggish water dissociation upon Fe–N 4 active sites limits their proton‐coupled electron transfer (PCET) capability, impeding their practical applications like anion‐exchange membrane fuel cells (AEMFCs). Here, inspired by the known nanoprecipitation behavior in solid‐solution alloys, a residual‐oxygen‐assisted precipitation strategy is undertaken to fabricate coupled Fe 3 O 4 ‐cluster precipitates along with single Fe‐atom catalysts (Fe 3 O 4 /Fe SA @NC), where Fe 3 O 4 clusters are generated by slight oxidation and local enrichment of Fe atoms in the Fe SA @NC matrix. Operando spectroscopy and theoretical calculations suggest that the Fe 3 O 4 ‐cluster precipitates not only induce asymmetric electronic structures of the Fe‐N 4 active center to optimize the OH* adsorption, but also accelerate the water dissociation on Fe‐N 4 sites to boost the PCET steps, thereby promoting the ORR. Notably, the coupled Fe 3 O 4 /Fe SA @NC exhibits superb alkaline ORR performance with a high half‐wave potential of 0.953 V versus RHE. When employed as cathode catalysts, the Fe 3 O 4 /Fe SA @NC demonstrates a high peak power density of 909.3 mW cm −2 and 219.4 mW cm −2 in AEMFCs and Zn‐air batteries, respectively, far exceeding that of the commercial Pt/C catalyst. The novel coupled metal‐oxide cluster/SAC strategy can be exploited as a generic approach for improving electrocatalytic performance.
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