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铜铟单原子合金中主体-客体金属相互作用切换电催化CO还原途径

Host-Guest Metal Interaction in Cu-In Single Atom Alloy Switching Electrocatalytic CO Reduction Pathway.

作者信息

Du Jia-Huan, Liu Ziwei, Sheng Tian, Liu Jinyun, Ye Jinyu, Li Yifan, Chen Shanyong, Zhang Yuting, Gu Xuehong

机构信息

State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering, Nanjing Tech University, Nanjing, 211816, China.

Key Laboratory of Functional Molecular Solids, Ministry of Education, College of Chemistry and Materials Science, Anhui Normal University, Wuhu, 241002, China.

出版信息

Angew Chem Int Ed Engl. 2025 Sep 4:e202512970. doi: 10.1002/anie.202512970.

Abstract

The catalytic behavior of alloy electrocatalyst is strongly influenced by host-guest metal interaction, which governs adsorption energy and product selectivity. However, in conventional bimetallic alloy systems, the catalyst composition and the geometric configuration often obscure the identification of critical active sites. Here, we investigate the host-guest metal interaction in Cu-In single atom alloy (SAA) catalysts, demonstrating a remarkable switching of electrochemical CO reduction reaction (CORR) pathway. Doping 1% Indium into a Cu matrix forms isolated In-Cu interfaces, enabling efficient CO-to-CO conversion with a Faradaic efficiency exceeding 90%. Conversely, doping 1% Cu into an Indium matrix leads to the formation of a CuIn alloy phase, shifting the product selectivity to HCOOH with a Faradaic efficiency exceeding 90%. In situ spectroscopic measurements and density functional theory (DFT) simulations reveal that Cu serves as the active site on both Cu-In SAA catalysts. The adsorption energy of host Cu atoms is affected by doped Indium at the In-Cu interface, which promotes CO adsorption and activation while weakening the binding strength of linearly bonded *CO, thereby enhancing CO selectivity. Conversely, the rigid matrix of the CuIn alloy stabilizes the bridge-bonded *CO, favoring the production of HCOOH.

摘要

合金电催化剂的催化行为受到主客体金属相互作用的强烈影响,这种相互作用决定了吸附能和产物选择性。然而,在传统的双金属合金体系中,催化剂组成和几何构型常常掩盖了关键活性位点的识别。在此,我们研究了铜铟单原子合金(SAA)催化剂中的主客体金属相互作用,证明了电化学CO还原反应(CORR)途径的显著转变。在铜基体中掺杂1%的铟形成孤立的铟-铜界面,实现了高效的CO到CO转化,法拉第效率超过90%。相反,在铟基体中掺杂1%的铜导致形成铜铟合金相,产物选择性转变为HCOOH,法拉第效率超过90%。原位光谱测量和密度泛函理论(DFT)模拟表明,铜在两种铜铟SAA催化剂上均为活性位点。铟-铜界面处掺杂的铟会影响主体铜原子的吸附能,促进CO的吸附和活化,同时削弱线性键合CO的结合强度,从而提高CO选择性。相反,铜铟合金的刚性基体使桥式键合CO稳定,有利于HCOOH的生成。

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