4.8 Article

High-Performance Perovskite Composite Electrocatalysts Enabled by Controllable Interface Engineering

期刊

SMALL
卷 17, 期 29, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202101573

关键词

cation deficiency; controllable interface engineering; oxygen evolution reaction; perovskite composites; phase separation; water splitting

资金

  1. Australian Research Council Discovery Projects [ARC DP200103332, ARC DP200103315]
  2. Australian Research Council Linkage Projects [ARC LP160101729]
  3. SEM and XRD instrumentation at the John de Laeter Centre, Curtin University [ARC LE0775553, ARC LE0775551]
  4. Max Planck-POSTECH-Hsinchu Center for Complex Phase Materials
  5. Australian Government Research Training Program Scholarship

向作者/读者索取更多资源

This study presents a strategy of cation deficiency-promoted phase separation to design perovskite-based composites with significantly enhanced water oxidation kinetics compared to single-phase counterparts. The composite catalyst outperforms known perovskite oxide systems and state-of-the-art catalysts by 1-3 orders of magnitude, demonstrating a simple and viable approach to developing high-performance, perovskite-based composite catalysts for electrochemical energy conversion.
Single-phase perovskite oxides that contain nonprecious metals have long been pursued as candidates for catalyzing the oxygen evolution reaction, but their catalytic activity cannot meet the requirements for practical electrochemical energy conversion technologies. Here a cation deficiency-promoted phase separation strategy to design perovskite-based composites with significantly enhanced water oxidation kinetics compared to single-phase counterparts is reported. These composites, self-assembled from perovskite precursors, comprise strongly interacting perovskite and related phases, whose structure, composition, and concentration can be accurately controlled by tailoring the stoichiometry of the precursors. The composite catalyst with optimized phase composition and concentration outperforms known perovskite oxide systems and state-of-the-art catalysts by 1-3 orders of magnitude. It is further demonstrated that the strong interfacial interaction of the composite catalysts plays a key role in promoting oxygen ionic transport to boost the lattice-oxygen participated water oxidation. These results suggest a simple and viable approach to developing high-performance, perovskite-based composite catalysts for electrochemical energy conversion.

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