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A review on fundamentals for designing oxygen evolution electrocatalysts

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TLDR
This article summarized the recent progress in understanding OER mechanisms, which include the conventional adsorbate evolution mechanism (AEM) and lattice-oxygen-mediated mechanism (LOM) from both theoretical and experimental aspects, and introduced strategies to reduce overpotential.
Abstract
Electricity-driven water splitting can facilitate the storage of electrical energy in the form of hydrogen gas. As a half-reaction of electricity-driven water splitting, the oxygen evolution reaction (OER) is the major bottleneck due to the sluggish kinetics of this four-electron transfer reaction. Developing low-cost and robust OER catalysts is critical to solving this efficiency problem in water splitting. The catalyst design has to be built based on the fundamental understanding of the OER mechanism and the origin of the reaction overpotential. In this article, we summarize the recent progress in understanding OER mechanisms, which include the conventional adsorbate evolution mechanism (AEM) and lattice-oxygen-mediated mechanism (LOM) from both theoretical and experimental aspects. We start with the discussion on the AEM and its linked scaling relations among various reaction intermediates. The strategies to reduce overpotential based on the AEM and its derived descriptors are then introduced. To further reduce the OER overpotential, it is necessary to break the scaling relation of HOO* and HO* intermediates in conventional AEM to go beyond the activity limitation of the volcano relationship. Strategies such as stabilization of HOO*, proton acceptor functionality, and switching the OER pathway to LOM are discussed. The remaining questions on the OER and related perspectives are also presented at the end.

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Journal ArticleDOI

Hydrogen production from water electrolysis: role of catalysts.

TL;DR: This review will start with an introduction of the water splitting performance evaluation of various electrocatalysts in terms of activity, stability, and efficiency, and is followed by outlining current knowledge on the two half-cell reactions, hydrogen evolution reaction (HER) and oxygen evolution Reaction (OER), in Terms of reaction mechanisms in alkaline and acidic media.
Journal ArticleDOI

Recent advances in activating surface reconstruction for the high-efficiency oxygen evolution reaction.

TL;DR: A comprehensive review of the surface reconstruction of transition metal-based OER catalysts including oxides, non-oxides, hydroxides and alloys can be found in this article.
Journal ArticleDOI

Recent Development of Oxygen Evolution Electrocatalysts in Acidic Environment.

TL;DR: In this paper, the authors provide the current progress on understanding of OER mechanisms in acid, analyze the promising strategies to enhance both activity and stability, and summarize the state-of-the-art catalysts for OER in acid.
Journal ArticleDOI

Stability challenges of electrocatalytic oxygen evolution reaction: From mechanistic understanding to reactor design

TL;DR: In this article, the authors provide catalysts and reactor design principles for overcoming OER stability challenges and focus more attention from the field on the great importance of oxygen evolution reaction (OER) stability as well as future large scale electrocatalysis applications.
Journal ArticleDOI

Electrocatalytic Refinery for Sustainable Production of Fuels and Chemicals

TL;DR: In this paper, the authors present fundamentals of heterogeneous electrocatalysis and some primary reactions, and then implement these to establish the framework of e-refinery by coupling in situ generated intermediates (integrated reactions) or products (tandem reactions).
References
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Journal ArticleDOI

Opportunities and challenges for a sustainable energy future

TL;DR: This Perspective provides a snapshot of the current energy landscape and discusses several research and development opportunities and pathways that could lead to a prosperous, sustainable and secure energy future for the world.
Journal ArticleDOI

Origin of the Overpotential for Oxygen Reduction at a Fuel-Cell Cathode

TL;DR: In this paper, the stability of reaction intermediates of electrochemical processes on the basis of electronic structure calculations was analyzed and a detailed description of the free energy landscape of the electrochemical oxygen reduction reaction over Pt(111) as a function of applied bias was presented.
Journal ArticleDOI

Benchmarking Heterogeneous Electrocatalysts for the Oxygen Evolution Reaction

TL;DR: In this paper, the authors report a protocol for evaluating the activity, stability, and Faradaic efficiency of electrodeposited oxygen-evolving electrocatalysts for water oxidation.
Journal ArticleDOI

Electrocatalysis for the oxygen evolution reaction: recent development and future perspectives

TL;DR: This review acquaints some materials for performing OER activity, in which the metal oxide materials build the basis of OER mechanism while non-oxide materials exhibit greatly promising performance toward overall water-splitting.
Journal ArticleDOI

A perovskite oxide optimized for oxygen evolution catalysis from molecular orbital principles.

TL;DR: The high activity of BSCF was predicted from a design principle established by systematic examination of more than 10 transition metal oxides, which showed that the intrinsic OER activity exhibits a volcano-shaped dependence on the occupancy of the 3d electron with an eg symmetry of surface transition metal cations in an oxide.
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