4.8 Review

Lattice-Strain Engineering for Heterogenous Electrocatalytic Oxygen Evolution Reaction

Journal

ADVANCED MATERIALS
Volume -, Issue -, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202209876

Keywords

d-band center; electronic configuration; heterogenous oxygen evolution reaction; lattice-strain engineering; structure-activity relationships

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The energy efficiency of metal-air batteries and water-splitting techniques is limited by multiple electronic transfers in the heterogenous oxygen evolution reaction (OER) and high overpotential caused by slow kinetics. Tailoring the surface physicochemical properties of nanocatalysts using lattice-strain engineering can enhance activity, selectivity, and stability. This review explores the fundamentals of OER, advancements in strain-catalysts, and discusses strategies to optimize lattice-strain and activity.
The energy efficiency of metal-air batteries and water-splitting techniques is severely constrained by multiple electronic transfers in the heterogenous oxygen evolution reaction (OER), and the high overpotential induced by the sluggish kinetics has become an uppermost scientific challenge. Numerous attempts are devoted to enabling high activity, selectivity, and stability via tailoring the surface physicochemical properties of nanocatalysts. Lattice-strain engineering as a cutting-edge method for tuning the electronic and geometric configuration of metal sites plays a pivotal role in regulating the interaction of catalytic surfaces with adsorbate molecules. By defining the d-band center as a descriptor of the structure-activity relationship, the individual contribution of strain effects within state-of-the-art electrocatalysts can be systematically elucidated in the OER optimization mechanism. In this review, the fundamentals of the OER and the advancements of strain-catalysts are showcased and the innovative trigger strategies are enumerated, with particular emphasis on the feedback mechanism between the precise regulation of lattice-strain and optimal activity. Subsequently, the modulation of electrocatalysts with various attributes is categorized and the impediments encountered in the practicalization of strained effect are discussed, ending with an outlook on future research directions for this burgeoning field.

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