4.7 Article

Non-metal/metalloid modification of perovskite oxide enables lattice oxygen participation in accelerating oxygen evolution activity

期刊

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
卷 47, 期 92, 页码 39108-39119

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2022.09.087

关键词

Perovskite oxide; Non-metal; Lattice oxygen participation; Oxygen diffusivity; Oxygen evolution reaction

资金

  1. National Natural Science Foundation of China
  2. Guangdong Basic and Applied Basic Research Foundation
  3. Fundamental Research Funds for the Central Universities
  4. [22178144]
  5. [51702125]
  6. [2021A1515010157]
  7. [21622418]

向作者/读者索取更多资源

This study demonstrates a simple non-metal/metalloid modification method to create efficient electrocatalysts for the oxygen evolution reaction (OER). The developed SrCo0.95M0.05O3_$ catalysts show lower overpotential and improved stability compared to the traditional SrCoO3_ $. The findings provide a simple and viable strategy for creating highly efficient perovskite electrocatalysts for OER.
Perovskite oxides, with structural and compositional flexibility, have been extensively used as electrocatalysts in alkaline solutions for the oxygen evolution reaction (OER) which is a key factor in determining the overall efficiency of metal-air batteries or hydrogen evolution from electrochemical water splitting. The cation-doping approach is widely used to generate novel perovskite oxides with boosted electrocatalytic activity, while non-metal and metalloid modifications have received far less attention. Herein, we show a simple non-metal/metalloid alteration method to make efficient OER electrocatalysts with low overpotential and good stability. The developed SrCo0.95M0.05O3_$ (M = P, S, and Si) catalysts exhibit greatly improved OER activity and stability in comparison to the pristine hexagonal SrCoO3_$. SrCo0.95Si0.05O3_$ achieves the lowest OER overpotential of 0.41 V at 10 mA cm_2 disk and the lowest Tafel slope of 63 mV dec_1, while SrCoO3_$ exhibits 0.46 V and 95 mV dec_1 under identical conditions. SrCo0.95Si0.05O3_$ further demonstrates improved stability when compared to SrCoO3_$. The creation of a stable cubic perovskite structure with an increased amount of oxygen vacancy facilitates oxygen diffusivity, thus maximizing the lattice oxygen participation. Furthermore, the surface evolution and the enhanced room-temperature electrical conductivity jointly contribute to the improvement of the electro-catalytic OER activity of SrCo0.95M0.05O3_8. Our present findings offer a simple and viable strategy for creating highly efficient perovskites for OER.(c) 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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