电催化剂
过电位
材料科学
异质结
价(化学)
双金属
化学物理
析氧
过渡金属
纳米
金属
纳米技术
电子结构
纳米尺度
催化作用
电极
物理化学
电化学
计算化学
化学
光电子学
生物化学
有机化学
复合材料
冶金
作者
Huijun Song,Xiaoqiu Xu,Jingjing Chen,Yinling Zhang,Jia Zhao,Chongzhi Zhu,Hong Zhang,Yong Peng,Qiaoli Chen,Guan Sheng,Tulai Sun,Yu Han,Xiao‐Nian Li,Yihan Zhu
标识
DOI:10.1002/adfm.202301490
摘要
Abstract Integrating high‐valence metal sites into transition metal‐based oxygen evolution reaction (OER) catalysts turns out to be a prevailing solution to replacing noble metal‐based electrocatalysts. However, stabilizing the thermodynamically unfavorable high‐valence metal sites within the electrocatalyst remains challenging. Hereby, a general strategy is proposed that evokes cooperative geometric and electronic interactions at nanometer coherent interfaces, which effectively stabilizes interfacial high‐valence metal sites within homogeneously distributed heterostructures and significantly enhances electrocatalytic activity. As a proof‐of‐concept study, by derivatizing multicomponent isoreticular hybridized metal–organic frameworks with separated σ‐ or π‐bonded moieties, bimetal Ni–Fe selenides heterostructures with nanoscopic compositional and structural homogeneity are grafted. Such heterostructures entail nanometer‐sized coherent interfaces that accommodate large geometric distortions and cooperatively stabilize the energetically unfavorable Jahn–Teller active electronic states of high‐valence interfacial Ni sites. The presence of high‐valence interfacial Ni sites and associated collective Jahn–Teller distortions greatly facilitate the Ni oxidation cycling through Ni 3+ /Ni 4+ transition and stabilizes the *O key intermediate at Ni‐Se dual sites, both of which synergistically lowers down the overall OER overpotential.
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