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三维过渡金属(氧)氢氧化物和尖晶石型氧化物在析氧反应过程中的表面重构与转变综述

A Review of Surface Reconstruction and Transformation of 3d Transition-Metal (oxy)Hydroxides and Spinel-Type Oxides during the Oxygen Evolution Reaction.

作者信息

He Biao, Bai Fan, Jain Priya, Li Tong

机构信息

Faculty of Mechanical Engineering, Atomic-scale Characterisation, Ruhr-Universität Bochum, Universitätsstraße 150, 44801, Bochum, Germany.

出版信息

Small. 2025 Mar;21(10):e2411479. doi: 10.1002/smll.202411479. Epub 2025 Feb 7.

DOI:10.1002/smll.202411479
PMID:39916593
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11899548/
Abstract

Developing efficient and sustainable electrocatalysts for the oxygen evolution reaction (OER) is crucial for advancing energy conversion and storage technologies. 3d transition-metal (oxy)hydroxides and spinel-type oxides have emerged as promising candidates due to their structural flexibility, oxygen redox activity, and abundance in earth's crust. However, their OER performance can be changed dynamically during the reaction due to surface reconstruction and transformation. Essentially, multiple elementary processes occur simultaneously, whereby the electrocatalyst surfaces undergo substantial changes during OER. A better understanding of these elementary processes and how they affect the electrocatalytic performance is essential for the OER electrocatalyst design. This review aims to critically assess these processes, including oxidation, surface amorphization, transformation, cation dissolution, redeposition, and facet and electrolyte effects on the OER performance. The review begins with an overview of the electrocatalysts' structure, redox couples, and common issues associated with electrochemical measurements of 3d transition-metal (oxy)hydroxides and spinels, followed by recent advancements in understanding the elementary processes involved in OER. The challenges and new perspectives are presented at last, potentially shedding light on advancing the rational design of next-generation OER electrocatalysts for sustainable energy conversion and storage applications.

摘要

开发用于析氧反应(OER)的高效且可持续的电催化剂对于推进能量转换和存储技术至关重要。3d过渡金属(氧)氢氧化物和尖晶石型氧化物因其结构灵活性、氧氧化还原活性以及在地壳中的丰富储量而成为有前景的候选材料。然而,由于表面重构和转变,它们的OER性能在反应过程中可能会动态变化。本质上,多个基本过程同时发生,在此过程中电催化剂表面在OER期间会发生显著变化。更好地理解这些基本过程以及它们如何影响电催化性能对于OER电催化剂设计至关重要。本综述旨在批判性地评估这些过程,包括氧化、表面非晶化、转变、阳离子溶解、再沉积以及晶面和电解质对OER性能的影响。综述首先概述电催化剂的结构、氧化还原对以及与3d过渡金属(氧)氢氧化物和尖晶石的电化学测量相关的常见问题,接着介绍在理解OER中涉及的基本过程方面的最新进展。最后提出挑战和新观点,有望为推进用于可持续能量转换和存储应用的下一代OER电催化剂的合理设计提供启示。

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本文引用的文献

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Tafel Slope Plot as a Tool to Analyze Electrocatalytic Reactions.塔菲尔斜率图作为分析电催化反应的工具
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Structural engineering of atomic catalysts for electrocatalysis.用于电催化的原子催化剂的结构工程
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Sub-2 nm IrRuNiMoCo High-Entropy Alloy with Iridium-Rich Medium-Entropy Oxide Shell to Boost Acidic Oxygen Evolution.具有富铱中熵氧化物壳层的亚2纳米铱钌镍钼钴高熵合金用于促进酸性析氧反应
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