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用于设计高效析氧反应电催化剂的硒酸蚀刻辅助空位工程

Selenic Acid Etching Assisted Vacancy Engineering for Designing Highly Active Electrocatalysts toward the Oxygen Evolution Reaction.

作者信息

Zhang Lin, Lu Chengjie, Ye Fei, Pang Ruilvjing, Liu Yang, Wu Zeyi, Shao Zongping, Sun Zhengming, Hu Linfeng

机构信息

Department of Materials Science, Fudan University, Shanghai, 200433, P. R. China.

School of Materials Science and Engineering, Southeast University, Nanjing, 211189, P. R. China.

出版信息

Adv Mater. 2021 Apr;33(14):e2007523. doi: 10.1002/adma.202007523. Epub 2021 Mar 3.

Abstract

Oxygen evolution electrocatalysts are central to overall water splitting, and they should meet the requirements of low cost, high activity, high conductivity, and stable performance. Herein, a general, selenic-acid-assisted etching strategy is designed from a metal-organic framework as a precursor to realize carbon-coated 3d metal selenides M Se (Co Se , NiSe , FeSe ) with rich Se vacancies as high-performance precious metal-free oxygen evolution reaction (OER) electrocatalysts. Specifically, the as-prepared Co Se @C nanocages deliver an overpotential of only 231 mV at a current density of 10 mA cm for the OER and the corresponding full water-splitting electrolyzer requires only a cell voltage of 1.49 V at 10 mA cm in alkaline media. Density functional theory calculation reveals the important role of abundant Se vacancies for improving the catalytic activity through improving the conductivity and reducing reaction barriers for the formation of intermediates. Although phase change after long-term operation is observed with the formation of metal hydroxides, catalytic activity is not obviously affected, which strengthens the important role of the carbon network in the operating stability. This study provides a new opportunity to realize high-performance OER electrocatalysts by a general strategy on selenic acid etching assisted vacancy engineering.

摘要

析氧电催化剂是全水分解的核心,它们应满足低成本、高活性、高导电性和稳定性能的要求。在此,设计了一种通用的硒酸辅助蚀刻策略,以金属有机框架为前驱体,实现具有丰富硒空位的碳包覆3d金属硒化物M Se(Co Se 、NiSe 、FeSe )作为高性能无贵金属析氧反应(OER)电催化剂。具体而言,所制备的Co Se @C纳米笼在10 mA cm 的电流密度下对OER的过电位仅为231 mV,相应的全水分解电解槽在碱性介质中10 mA cm 下仅需要1.49 V的电池电压。密度泛函理论计算揭示了丰富的硒空位通过提高导电性和降低中间体形成的反应势垒来提高催化活性的重要作用。尽管长期运行后观察到随着金属氢氧化物的形成发生了相变,但催化活性并未受到明显影响,这强化了碳网络在运行稳定性中的重要作用。本研究通过硒酸蚀刻辅助空位工程的通用策略为实现高性能OER电催化剂提供了新的机会。

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