Back to Search Start Over

Ternary Phase Diagram-Facilitated Rapid Screening of Double Perovskites As Electrocatalysts for the Oxygen Evolution Reaction

Authors :
Xiaomin Xu
Ting-Shan Chan
Jie Dai
Wei Zhou
Hainan Sun
Chien-Te Chen
Hong-Ji Lin
Zhiwei Hu
Juan He
Liu Hao Tjeng
Zongping Shao
Source :
Chemistry of Materials. 31:5919-5926
Publication Year :
2019
Publisher :
American Chemical Society (ACS), 2019.

Abstract

The development of cost-effective, non-noble metal electrocatalysts for the oxygen evolution reaction (OER) is of paramount importance for sustainable technologies. Efficient screening strategies for electrocatalysts can greatly increase the commercialization speed of these advanced technologies. Here, ternary phase diagrams with large-scale tuning and designated-scale tuning strategies are applied for the first time to provide a new method for screening perovskite oxide-based electrocatalysts for OERs. Specifically, the family of double perovskites (SrFeCoNiMoO, 0 ≤ x, y ≤ 1.5) was utilized to understand the role of transition metals in perovskite oxides. Ternary phase diagrams can facilitate a rapid screening process, provide a straightforward relationship between phase structures and catalytic activities, and help to confirm the effects of various combinations of transition metals on the OER activity. The Fe-Co system (SrFeCoMoO) improves the catalytic activities, as demonstrated by the reduced Tafel slope and enhanced stability, while the Fe-Ni system (SrFeNiMoO) improves the surface kinetic properties of the OER, as demonstrated by its reduced overpotential. Significantly, the Co, Ni, and Fe ternary phase systems can serve as the synergistic coactive sites (SrFeCoNiMoO) to catalyze the OER, resulting in an improved overall OER performance. This systematic study not only demonstrates a new strategy to allow the rapid screening of double perovskite OER catalysts based on large-scale tuning and designated-scale tuning strategies but, more importantly, also provides an insightful understanding of the use of multitransition metal-based double perovskites for catalysis of the OER.

Details

ISSN :
15205002 and 08974756
Volume :
31
Database :
OpenAIRE
Journal :
Chemistry of Materials
Accession number :
edsair.doi...........9edb489bf48ecd0598acadd051c6c108
Full Text :
https://doi.org/10.1021/acs.chemmater.9b02261