Effects of functional supports on efficiency and stability of atomically dispersed noble-metal electrocatalysts

IF 22.2 Q1 CHEMISTRY, MULTIDISCIPLINARY
Seongbeen Kim , Jinkyu Park , Jongkook Hwang , Jinwoo Lee
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引用次数: 16

Abstract

Atomically dispersed metal catalysts (ADCs), particularly of noble metal, have unique catalytic properties such as maximized atom efficiency, high catalytic activity, and superior selectivity. In ADCs, the metal centers are in intimate contact with the support, hence, the support significantly affects the catalytic behavior of the ADCs by participating in reactions, either directly or indirectly. Therefore, for electrocatalytic reactions, thorough understanding of the function of the supports is required in designing effective ADCs with superior activity and stability. In this review, we summarize and discuss the functions of supports in several synthesis strategies and electrocatalytic reactions of atomically dispersed noble-metal catalysts. We outline various synthesis strategies, and identify a need for a suitable design of the support to stabilize the atom-dimension metal structure. Furthermore, we describe (electro)catalysis of ADCs, with focus on support-derived factors that affect the catalytic performance of the ADCs, such as strong metal-support interaction (SMSI), geometric effects of atom-dimension structure, local environment near metal centers, and chemical properties of supports. Finally, we identify current challenges and future prospects of functional supports in ADCs.

Abstract Image

功能载体对原子分散贵金属电催化剂效率和稳定性的影响
原子分散金属催化剂(adc),特别是贵金属催化剂,具有最大的原子效率、高的催化活性和优越的选择性等独特的催化性能。在adc中,金属中心与载体密切接触,因此载体通过直接或间接参与反应,显著影响adc的催化行为。因此,对于电催化反应,要设计出具有优异活性和稳定性的有效adc,就需要深入了解载体的功能。本文综述并讨论了载体在原子分散贵金属催化剂的几种合成策略和电催化反应中的作用。我们概述了各种合成策略,并确定需要合适的支撑设计来稳定原子尺寸的金属结构。此外,我们描述了adc的(电)催化,重点讨论了影响adc催化性能的载体衍生因素,如强金属-载体相互作用(SMSI)、原子维结构的几何效应、金属中心附近的局部环境和载体的化学性质。最后,我们确定了adc中功能支持的当前挑战和未来前景。
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来源期刊
EnergyChem
EnergyChem Multiple-
CiteScore
40.80
自引率
2.80%
发文量
23
审稿时长
40 days
期刊介绍: EnergyChem, a reputable journal, focuses on publishing high-quality research and review articles within the realm of chemistry, chemical engineering, and materials science with a specific emphasis on energy applications. The priority areas covered by the journal include:Solar energy,Energy harvesting devices,Fuel cells,Hydrogen energy,Bioenergy and biofuels,Batteries,Supercapacitors,Electrocatalysis and photocatalysis,Energy storage and energy conversion,Carbon capture and storage
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