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非贵金属氧反应电催化剂的缺陷化学。

Defect Chemistry of Nonprecious-Metal Electrocatalysts for Oxygen Reactions.

机构信息

State Key Laboratory of Chem/Bio-Sensing and Chemometrics, Provincial Hunan Key Laboratory for Graphene Materials and Devices, College of Chemistry and Chemical Engineering, Hunan University, Changsha, 410082, P. R. China.

Center of Advanced Science and Engineering for Carbon (Case 4-carbon), Department of Macromolecular Science and Engineering, Case Western Reserve University, 10900 Euclid Avenue, Cleveland, OH, 44106, USA.

出版信息

Adv Mater. 2017 Dec;29(48). doi: 10.1002/adma.201606459. Epub 2017 May 16.

Abstract

Oxygen electrocatalysis, including the oxygen-reduction reaction (ORR) and oxygen-evolution reaction (OER), is a critical process for metal-air batteries. Therefore, the development of electrocatalysts for the OER and the ORR is of essential importance. Indeed, various advanced electrocatalysts have been designed for the ORR or the OER; however, the origin of the advanced activity of oxygen electrocatalysts is still somewhat controversial. The enhanced activity is usually attributed to the high surface areas, the unique facet structures, the enhanced conductivities, or even to unclear synergistic effects, but the importance of the defects, especially the intrinsic defects, is often neglected. More recently, the important role of defects in oxygen electrocatalysis has been demonstrated by several groups. To make the defect effect clearer, the recent development of this concept is reviewed here and a novel principle for the design of oxygen electrocatalysts is proposed. An overview of the defects in carbon-based, metal-free electrocatalysts for ORR and various defects in metal oxides/selenides for OER is also provided. The types of defects and controllable strategies to generate defects in electrocatalysts are presented, along with techniques to identify the defects. The defect-activity relationship is also explored by theoretical methods.

摘要

氧电催化,包括氧还原反应(ORR)和氧析出反应(OER),是金属空气电池的关键过程。因此,开发用于 OER 和 ORR 的电催化剂至关重要。事实上,已经设计了各种用于 ORR 或 OER 的先进电催化剂;然而,氧电催化剂的先进活性的起源仍然有些争议。增强的活性通常归因于高的比表面积、独特的晶面结构、增强的导电性,甚至是不明确的协同效应,但缺陷的重要性,尤其是本征缺陷,往往被忽视。最近,几个研究小组证明了缺陷在氧电催化中的重要作用。为了使缺陷效应更加清晰,这里回顾了这一概念的最新发展,并提出了一种设计氧电催化剂的新原理。本文还概述了 ORR 中无金属碳基电催化剂中的缺陷和 OER 中各种金属氧化物/硒化物中的缺陷。介绍了电催化剂中缺陷的类型和产生缺陷的可控策略,以及识别缺陷的技术。还通过理论方法探索了缺陷-活性关系。

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