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用于氧还原和一氧化碳还原反应的原子分散双位点催化剂的不对称微环境调控策略

Asymmetric Microenvironment Tailoring Strategies of Atomically Dispersed Dual-Site Catalysts for Oxygen Reduction and CO Reduction Reactions.

作者信息

Huang Shiqing, Lin Fanmiao, Wang Shitao, Zeng Xiaofei, Ling Hao, Hu Xiayi, Shen Zhigang, Cao Dapeng

机构信息

State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.

College of Chemical Engineering, Xiangtan University, Xiangtan, Hunan, 411105, P. R. China.

出版信息

Adv Mater. 2024 Oct;36(41):e2407974. doi: 10.1002/adma.202407974. Epub 2024 Aug 17.

DOI:10.1002/adma.202407974
PMID:39152929
Abstract

Dual-atom catalysts (DACs) with atomically dispersed dual-sites, as an extension of single-atom catalysts (SACs), have recently become a new hot topic in heterogeneous catalysis due to their maximized atom efficiency and dual-site diverse synergy, because the synergistic diversity of dual-sites achieved by asymmetric microenvironment tailoring can efficiently boost the catalytic activity by optimizing the electronic structure of DACs. Here, this work first summarizes the frequently-used experimental synthesis and characterization methods of DACs. Then, four synergistic catalytic mechanisms (cascade mechanism, assistance mechanism, co-adsorption mechanism and bifunction mechanism) and four key modulating methods (active site asymmetric strategy, transverse/axial-modification engineering, distance engineering and strain engineering) are elaborated comprehensively. The emphasis is placed on the effects of asymmetric microenvironment of DACs on oxygen/carbon dioxide reduction reaction. Finally, some perspectives and outlooks are also addressed. In short, the review summarizes a useful asymmetric microenvironment tailoring strategy to speed up synthesis of high-performance electrocatalysts for different reactions.

摘要

具有原子分散双位点的双原子催化剂(DACs)作为单原子催化剂(SACs)的延伸,由于其最大化的原子效率和双位点的多样协同作用,近来已成为多相催化领域的一个新热点,这是因为通过不对称微环境调控实现的双位点协同多样性可通过优化DACs的电子结构有效提高催化活性。本文首先总结了DACs常用的实验合成和表征方法。然后,全面阐述了四种协同催化机制(级联机制、辅助机制、共吸附机制和双功能机制)以及四种关键调控方法(活性位点不对称策略、横向/轴向修饰工程、距离工程和应变工程)。重点介绍了DACs的不对称微环境对氧/二氧化碳还原反应的影响。最后,还给出了一些观点和展望。简而言之,该综述总结了一种有用的不对称微环境调控策略,以加速用于不同反应的高性能电催化剂的合成。

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