焦绿石
催化作用
离子半径
离子键合
材料科学
过渡金属
无机化学
氧气
金属
化学物理
离子
化学工程
化学
有机化学
相(物质)
工程类
冶金
作者
Chunyan Shang,Cong Cao,Dayou Yu,Yu Yan,Yitao Lin,Hongliang Li,Tingting Zheng,Xupeng Yan,Wenchao Yu,Shiming Zhou,Jie Zeng
标识
DOI:10.1002/adma.201805104
摘要
The development of highly efficient oxygen-evolving catalysts compatible with powerful proton-exchange-membrane-based electrolyzers in acid environments is of prime importance for sustainable hydrogen production. In this field, understanding the role of electronic structure of catalysts on catalytic activity is essential but still lacking. Herein, a family of pyrochlore oxides R2 Ir2 O7 (R = rare earth ions) is reported as acidic oxygen-evolving catalysts with superior-specific activities. More importantly, it is found that the intrinsic activity of this material significantly increases with the R ionic radius. Electronic structure studies reveal that the increased R ionic radius weakens electron correlations in these iridate oxides. This weakening induces an insulator-metal transition and an enhancement of IrO bond covalency, both of which promote oxygen evolution kinetics. This work demonstrates the importance of engineering the electron correlations to rationalize the catalytic activity toward water oxidation in strongly correlated transition-metal oxides.
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