用于电催化的碳基单/双原子催化剂的电子结构和几何结构调制

Shaolong Zhang , Jing Huang , Li Ma , Dong Zhai , Bin Wei , Hengpan Yang , Chuanxin He
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引用次数: 0

摘要

碳基单原子催化剂(SAC)和双原子催化剂(DAC)因其卓越的催化活性、选择性和成本效益等令人印象深刻的特性,在电化学反应领域备受关注。调控 SACs/DACs 中活性位点的电子结构和几何结构的能力对于释放其全部潜力至关重要,而这反过来又能最终以前所未有的精度决定催化行为。本综述概述了调控碳基 SACs/DACs 电子结构和几何构造的策略的最新主要发展。对于 SAC,最近报道的调控方法分为四种策略,包括调整单原子密度、缺陷工程、约束效应和应变工程。而对于 DAC,则包括键合双原子调节、非键合和桥合双原子调节、金属和非金属双原子调节、双层双原子调节和同质双原子调节五种方法。全面总结了最近开发的合成策略,特别是详细讨论了它们的电子结构和几何构型,重点介绍了电化学反应的不同催化应用及其独特的催化机理。最后,进一步讨论了 SACs/DACs 在定制其电子结构和几何排列方面所面临的挑战和前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electronic structure and geometric construction modulation of carbon-based single/dual atom catalysts for electrocatalysis

Both carbon-based single atom catalysts (SACs) and dual atom catalysts (DACs) have garnered significant attention in the field of electrochemical reactions because of the impressive attributes, including exceptional catalytic activity, selectivity, and cost-effectiveness. The ability to modulate the electronic structure and geometric construction of active sites within SACs/DACs is paramount for unleashing their complete potential, which in turn can ultimately dictate catalytic behavior with unprecedented precision. In this review, the recent major developments of the regulation strategies for modulating electronic structure and geometric construction of carbon-based SACs/DACs are summarized. For the SACs, the recently reported modulation methods are categorized into four strategies, including adjusting the density of single atoms, defect engineering, confinement effect and strain engineering. And for the DACs, the five methods contain bonded dual-atom adjustment, non-bonded and bridged dual-atom adjustment, metal and nonmetal dual-atom adjustment, bilayer dual-atom adjustment and homogeneous dual-atom adjustment. The recently developed synthetic strategies are comprehensively summarized, especially their electronic structure and geometric configuration are discussed in detail, the different catalytic applications of electrochemical reactions, and their unique catalytic mechanism are highlighted. Finally, the challenges and prospects of SACs/DACs for tailoring their electronic structures and geometric arrangements are further discussed.

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