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由本征Co/Fe类尖晶石表面辅助的BaSrCoFeO中的析氧反应

Oxygen Evolution Reaction in BaSrCoFeO Aided by Intrinsic Co/Fe Spinel-Like Surface.

作者信息

Shen Tzu-Hsien, Spillane Liam, Vavra Jan, Pham Thi Ha My, Peng Jiayu, Shao-Horn Yang, Tileli Vasiliki

机构信息

Institute of Materials, École Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland.

Gatan Inc., Pleasanton, California 94588, United States.

出版信息

J Am Chem Soc. 2020 Sep 16;142(37):15876-15883. doi: 10.1021/jacs.0c06268. Epub 2020 Sep 1.

Abstract

Among the perovskites used to catalyze the oxygen evolution reaction (OER), BaSrCoFeO (BSCF) exhibits excellent activity which is thought to be related to dynamic reconstruction at the flexible perovskite surface due to accommodation of large amount of oxygen vacancies. By studying the local structure and chemistry of BSCF surfaces, in detail, via a range of transmission electron microscopy (TEM) methods, we show that the surfaces of the as-synthesized BSCF particles are Co/Fe rich, and remarkably, adopt a spinel-like structure with a reduced valence of Co ions. Post-mortem and identical location TEM analyses reveal that the Co/Fe spinel-like surface retains a stable chemical environment of the Co/Fe ions, although its structure weakens after electrochemical processing. Further, it is verified that prior to the onset of OER, the Co/Fe spinel-like surface promotes the formation of the highly active Co(Fe)OOH phase, which enhances the OER electrocatalytic properties of the underlying conductive BSCF perovskite. This study provides a detailed understanding of the fundamental transformations that oxide catalysts undergo during electrochemical processes and can aid in the development of novel oxide catalysts with enhanced activity.

摘要

在用于催化析氧反应(OER)的钙钛矿中,钡锶钴铁氧化物(BSCF)表现出优异的活性,这被认为与由于大量氧空位的存在而在柔性钙钛矿表面发生的动态重构有关。通过一系列透射电子显微镜(TEM)方法详细研究BSCF表面的局部结构和化学性质,我们发现合成后的BSCF颗粒表面富含Co/Fe,并且显著地呈现出一种Co离子价态降低的类尖晶石结构。死后和相同位置的TEM分析表明,Co/Fe类尖晶石表面保留了Co/Fe离子稳定的化学环境,尽管其结构在电化学处理后会减弱。此外,已证实,在OER开始之前,Co/Fe类尖晶石表面促进了高活性Co(Fe)OOH相的形成,这增强了底层导电BSCF钙钛矿的OER电催化性能。这项研究详细阐述了氧化物催化剂在电化学过程中所经历的基本转变,并有助于开发具有更高活性的新型氧化物催化剂。

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