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Defect Engineering of Brownmillerites for Oxygen Evolution and Reduction Electrocatalysis

Sep 2026 · Chemistry of Materials · 0 citations · 108 references

Abstract

The slow kinetics of the oxygen evolution (OER) and reduction (ORR) reactions, combined with the high costs of noble metals, remain major barriers to a sustainable hydrogen economy. Earth-abundant brownmillerite-type oxides (A2B2O5) offer a promising alternative, yet their catalytic mechanism is frequently misunderstood. Because the highest activities emerge following electrochemical surface amorphization (OER) or order–disorder transitions (ORR), the pristine vacancy-ordered framework is rarely the static active phase. Herein, we reframe brownmillerites as highly specific, compositionally addressable precatalysts whose initial crystal chemistry acts as a structural template that governs the depth, composition, and stability of the operando-reconstructed active phase. Despite their potential, existing literature often treats them as perovskite subsets, neglecting the mechanistic impact of their vacancy-ordered structure and operando surface reconstruction. This review provides a unified framework linking brownmillerite defect chemistry to electrocatalytic performance. By evaluating synthesis, structural, and anionic modifications along with a comprehensive benchmarking table for this material class, we establish the mechanistic depth and structure–property correlations necessary for designing next-generation, noble-metal-free catalysts.

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