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用于电催化的原子催化剂的结构工程

Structural engineering of atomic catalysts for electrocatalysis.

作者信息

Tang Tianmi, Bai Xue, Wang Zhenlu, Guan Jingqi

机构信息

Institute of Physical Chemistry, College of Chemistry, Jilin University Changchun 130021 PR China

出版信息

Chem Sci. 2024 Mar 5;15(14):5082-5112. doi: 10.1039/d4sc00569d. eCollection 2024 Apr 3.

Abstract

As a burgeoning category of heterogeneous catalysts, atomic catalysts have been extensively researched in the field of electrocatalysis. To satisfy different electrocatalytic reactions, single-atom catalysts (SACs), diatomic catalysts (DACs) and triatomic catalysts (TACs) have been successfully designed and synthesized, in which microenvironment structure regulation is the core to achieve high-efficiency catalytic activity and selectivity. In this review, the effect of the geometric and electronic structure of metal active centers on catalytic performance is systematically introduced, including substrates, central metal atoms, and the coordination environment. Then theoretical understanding of atomic catalysts for electrocatalysis is innovatively discussed, including synergistic effects, defect coupled spin state change and crystal field distortion spin state change. In addition, we propose the challenges to optimize atomic catalysts for electrocatalysis applications, including controlled synthesis, increasing the density of active sites, enhancing intrinsic activity, and improving the stability. Moreover, the structure-function relationships of atomic catalysts in the CO reduction reaction, nitrogen reduction reaction, oxygen reduction reaction, hydrogen evolution reaction, and oxygen evolution reaction are highlighted. To facilitate the development of high-performance atomic catalysts, several technical challenges and research orientations are put forward.

摘要

作为一种新兴的多相催化剂类别,原子催化剂在电催化领域已得到广泛研究。为满足不同的电催化反应,单原子催化剂(SACs)、双原子催化剂(DACs)和三原子催化剂(TACs)已被成功设计和合成,其中微环境结构调控是实现高效催化活性和选择性的核心。在本综述中,系统介绍了金属活性中心的几何和电子结构对催化性能的影响,包括基底、中心金属原子和配位环境。然后创新性地讨论了用于电催化的原子催化剂的理论认识,包括协同效应、缺陷耦合自旋态变化和晶体场畸变自旋态变化。此外,我们提出了优化用于电催化应用的原子催化剂所面临的挑战,包括可控合成、增加活性位点密度、提高本征活性和改善稳定性。此外,还突出了原子催化剂在CO还原反应、氮还原反应、氧还原反应、析氢反应和析氧反应中的结构-功能关系。为推动高性能原子催化剂的发展,提出了若干技术挑战和研究方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d284/10988631/a0b48db84f11/d4sc00569d-f1.jpg

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