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碎片化铜上CO电还原中OC-COH偶联的机理洞察

Mechanistic Insights into OC-COH Coupling in CO Electroreduction on Fragmented Copper.

作者信息

Yao Kaili, Li Jun, Wang Haibin, Lu Ruihu, Yang Xiaotao, Luo Mingchuan, Wang Ning, Wang Ziyun, Liu Changxu, Jing Tan, Chen Songhua, Cortés Emiliano, Maier Stefan A, Zhang Sheng, Li Tieliang, Yu Yifu, Liu Yongchang, Kang Xinchen, Liang Hongyan

机构信息

School of Materials Science and Engineering and Key Laboratory of Efficient Utilization of Low and Medium Grade Energy, Tianjin University, Tianjin 300350, People's Republic of China.

School of Chemical Engineering, Kunming University of Science and Technology, Kunmin 650500, People's Republic of China.

出版信息

J Am Chem Soc. 2022 Aug 10;144(31):14005-14011. doi: 10.1021/jacs.2c01044. Epub 2022 Jul 29.

Abstract

The carbon-carbon (C-C) bond formation is essential for the electroconversion of CO into high-energy-density C products, and the precise coupling pathways remain controversial. Although recent computational investigations have proposed that the OC-COH coupling pathway is more favorable in specific reaction conditions than the well-known CO dimerization pathway, the experimental evidence is still lacking, partly due to the separated catalyst design and mechanistic/spectroscopic exploration. Here, we employ density functional theory calculations to show that on low-coordinated copper sites, the *CO bindings are strengthened, and the adsorbed *CO coupling with their hydrogenation species, *COH, receives precedence over CO dimerization. Experimentally, we construct a fragmented Cu catalyst with abundant low-coordinated sites, exhibiting a 77.8% Faradaic efficiency for C products at 300 mA cm. With a suite of spectroscopic studies, we capture an *OCCOH intermediate on the fragmented Cu surfaces, providing direct evidence to support the OC-COH coupling pathway. The mechanistic insights of this research elucidate how to design materials in favor of OC-COH coupling toward efficient C production from CO reduction.

摘要

碳-碳(C-C)键的形成对于将CO电转化为高能量密度的C产物至关重要,而精确的偶联途径仍存在争议。尽管最近的计算研究表明,在特定反应条件下,OC-COH偶联途径比著名的CO二聚化途径更有利,但仍缺乏实验证据,部分原因是催化剂设计与机理/光谱探索相分离。在此,我们采用密度泛函理论计算表明,在低配位铜位点上,CO的吸附增强,吸附的CO与其氢化物种COH的偶联优先于CO二聚化。在实验中,我们构建了一种具有大量低配位位点的碎片化Cu催化剂,在300 mA cm时对C产物的法拉第效率为77.8%。通过一系列光谱研究,我们在碎片化Cu表面捕获到了OCCOH中间体,为支持OC-COH偶联途径提供了直接证据。本研究的机理见解阐明了如何设计有利于OC-COH偶联的材料,以实现从CO还原高效生产C。

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