Improved Electrocatalytic Activity and Stability by Single Iridium Atoms on Iron‐based Layered Double Hydroxides for Oxygen Evolution

Full understanding to the origin of the catalytic performance of a supported nanocatalyst from the points of view of both the active component and support is significant for the achievement of high performance. Herein, based on a model electrocatalyst of single‐iridium‐atom‐doped iron (Fe)‐based lay...

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Veröffentlicht in:Angewandte Chemie International Edition 2023-10, Vol.62 (43), p.e202310973
Hauptverfasser: Cao, Jing, Mou, Tong, Mei, Bingbao, Yao, Pengfei, Han, Ce, Gong, Xue, Song, Ping, Jiang, Zheng, Frauenheim, Thomas, Xiao, Jianping, Xu, Weilin
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Sprache:eng
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Zusammenfassung:Full understanding to the origin of the catalytic performance of a supported nanocatalyst from the points of view of both the active component and support is significant for the achievement of high performance. Herein, based on a model electrocatalyst of single‐iridium‐atom‐doped iron (Fe)‐based layered double hydroxides (LDH) for oxygen evolution reaction (OER), we reveal the first completed origin of the catalytic performance of such supported nanocatalysts. Specially, besides the activity enhancement of Ir sites by LDH support, the stability of surface Fe sites is enhanced by doped Ir sites: DFT calculation shows that the Ir sites can reduce the activity and enhance the stability of the nearby Fe sites; while further finite element simulations indicate, the stability enhancement of distant Fe sites could be attributed to the much low concentration of OER reactant (hydroxyl ions, OH − ) around them induced by the much fast consumption of OH − on highly active Ir sites. These new findings about the interaction between the main active components and supports are applicable in principle to other heterogeneous nanocatalysts and provide a completed understanding to the catalytic performance of heterogeneous nanocatalysts.
ISSN:1433-7851
1521-3773
1521-3773
DOI:10.1002/anie.202310973