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用于电化学水分解的重组诱导氧化钴催化剂。

The Restructuring-Induced CoO Catalyst for Electrochemical Water Splitting.

作者信息

Wang Maoyu, Wa Qingbo, Bai Xiaowan, He Zuyun, Samarakoon Widitha S, Ma Qing, Du Yingge, Chen Yan, Zhou Hua, Liu Yuanyue, Wang Xinwei, Feng Zhenxing

机构信息

School of Chemical, Biological and Environmental Engineering, Oregon State University, Corvallis, Oregon 97331, United States.

School of Advanced Materials, Shenzhen Graduate School, Peking University, Shenzhen 518055, China.

出版信息

JACS Au. 2021 Nov 2;1(12):2216-2223. doi: 10.1021/jacsau.1c00346. eCollection 2021 Dec 27.

Abstract

Restructuring is an important yet less understood phenomenon in the catalysis community. Recent studies have shown that a group of transition metal sulfide catalysts can completely or partially restructure during electrochemical reactions which then exhibit high activity even better than the best commercial standards. However, such restructuring processes and the final structures of the new catalysts are elusive, mainly due to the difficulty from the reaction-induced changes that cannot be captured by ex situ characterizations. To establish the true structure-property relationship in these in situ generated catalysts, we use multimodel operando characterizations including Raman spectroscopy, X-ray absorption spectroscopy, and X-ray reflectivity to investigate the restructuring of a representative catalyst, CoS, that shows better activity compared to the commercial standard RuO during the oxygen evolution reaction (OER), a key half reaction in water-splitting for hydrogen generation. We find that CoS ultimately converts to oxide cluster (CoO ) containing six oxygen coordinated Co octahedra as the basic unit which is the true catalytic center to promote high OER activity. The density functional theory calculations verify the in situ generated CoO consisting of edge-sharing CoO octahedral clusters as the actual active sites. Our results also provide insights to design other transition-metal-based materials as efficient electrocatalysts that experience a similar restructuring in OER.

摘要

结构重构是催化领域一个重要但却鲜为人知的现象。最近的研究表明,一组过渡金属硫化物催化剂在电化学反应过程中会完全或部分发生结构重构,进而表现出甚至优于最佳商业标准的高活性。然而,这种结构重构过程以及新催化剂的最终结构却难以捉摸,主要原因在于反应诱导的变化难以通过非原位表征来捕捉。为了确定这些原位生成的催化剂中真正的结构-性能关系,我们使用包括拉曼光谱、X射线吸收光谱和X射线反射率在内的多模型原位表征方法,来研究一种代表性催化剂CoS的结构重构。在析氧反应(OER)中,CoS表现出比商业标准RuO更好的活性,而OER是水分解制氢的关键半反应。我们发现,CoS最终会转化为以含六个氧配位钴八面体为基本单元的氧化物簇(CoO ),这是促进高OER活性的真正催化中心。密度泛函理论计算证实,原位生成的CoO 由边共享的CoO八面体簇组成,是实际的活性位点。我们的研究结果还为设计其他在OER中经历类似结构重构的高效过渡金属基电催化剂提供了思路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf5f/8715481/fd9cd8f9cf92/au1c00346_0001.jpg

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