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不是一种,不是两种,而是至少三种:铜单原子催化剂对CO/CO₂电还原为含碳产物的活性来源

Not One, Not Two, But at Least Three: Activity Origin of Copper Single-Atom Catalysts toward CO/CO Electroreduction to C Products.

作者信息

Zhang Juan, Wang Yu, Li Yafei

机构信息

Jiangsu Key Laboratory of New Power Batteries, Jiangsu Collaborative Innovation Centre of Biomedical Functional Materials, School of Chemistry and Materials Science, Nanjing Normal University, Wenyuan Road No. 1, Nanjing 210023, People's Republic of China.

出版信息

J Am Chem Soc. 2024 Jun 5;146(22):14954-14958. doi: 10.1021/jacs.4c05669. Epub 2024 May 28.

Abstract

Copper (Cu) single-atom catalysts (SACs) exhibit great potential for generating multicarbon (C) products, but the intrinsic activity of single-atom Cu (Cu) under realistic conditions remains controversial. Herein, we perform extensive calculations with explicit solvation to investigate the underlying mechanism of Cu SACs, disclosing the absence of C activity in Cu sites regardless of the different substrates. The original Cu sites (first taking Cu stably anchored on carbon nitride as an example) cannot facilitate *CO hydrogenation and CO-CO coupling due to the lack of active sites nearby, and they are unstable under operation, causing leaching and aggregation to form small Cu clusters. The derived Cu clusters composed of at least three Cu atoms can efficiently promote CO-CO coupling, as revealed by kinetic analyses. We extend the modeling to other typical Cu SACs and reveal that all of the Cu sites are inactive, while the C performance of the derived Cu-cluster catalysts is substrate-dependent. This study offers mechanistic insights into Cu SACs and provides practical guidance for their rational optimization.

摘要

铜(Cu)单原子催化剂(SACs)在生成多碳(C)产物方面展现出巨大潜力,但在实际条件下单原子铜(Cu)的本征活性仍存在争议。在此,我们进行了大量包含显式溶剂化的计算,以研究铜单原子催化剂的潜在机制,揭示了无论底物如何不同,铜位点都不存在碳活性。原始的铜位点(首先以稳定锚定在氮化碳上的铜为例)由于附近缺乏活性位点,无法促进*CO氢化和CO-CO偶联,并且它们在操作过程中不稳定,导致浸出和聚集形成小的铜簇。动力学分析表明,由至少三个铜原子组成的衍生铜簇能够有效促进CO-CO偶联。我们将模型扩展到其他典型的铜单原子催化剂,发现所有铜位点均无活性,而衍生铜簇催化剂的碳性能则取决于底物。本研究为铜单原子催化剂提供了机理见解,并为其合理优化提供了实际指导。

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