Atomically Dispersed Ni–Cu Catalysts for pH‐Universal CO2 Electroreduction

Author:

Zhang Libing12,Feng Jiaqi1,Liu Shoujie3,Tan Xingxing12,Wu Limin12,Jia Shunhan12,Xu Liang1,Ma Xiaodong12,Song Xinning12,Ma Jun1,Sun Xiaofu12ORCID,Han Buxing124

Affiliation:

1. Beijing National Laboratory for Molecular Sciences CAS Key Laboratory of Colloid and Interface and Thermodynamics CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing 100190 China

2. School of Chemical Sciences University of Chinese Academy of Sciences Beijing 100049 China

3. Chemistry and Chemical Engineering of Guangdong Laboratory Shantou 515063 China

4. Shanghai Key Laboratory of Green Chemistry and Chemical Processses School of Chemistry and Molecular Engineering East China Normal University Shanghai 200062 China

Abstract

AbstractCO2 electroreduction is of great significance to reduce CO2 emissions and complete the carbon cycle. However, the unavoidable carbonate formation and low CO2 utilization efficiency in neutral or alkaline electrolytes hinder its application at commercial scale. The development of CO2 reduction under acidic conditions provides a promising strategy, but the inhibition of the hydrogen evolution reaction is difficult. Herein, the first work to design a Ni–Cu dual atom catalyst supported on hollow nitrogen‐doped carbon is reported for pH‐universal CO2 electroreduction to CO. The catalyst shows a high CO Faradaic efficiency of ≈99% in acidic, neutral, and alkaline electrolytes, and the partial current densities of CO reach 190 ± 11, 225 ± 10, and 489 ± 14 mA cm−2, respectively. In particular, the CO2 utilization efficiency under acidic conditions reaches 64.3%, which is twice as high as that of alkaline conditions. Detailed study indicates the existence of electronic interaction between Ni and Cu atoms. The Cu atoms push the Ni d‐band center further toward the Fermi level, thereby accelerating the formation of *COOH. In addition, operando characterizations and density functional theory calculation are used to elucidate the possible reaction mechanism of CO2 to CO under acidic and alkaline electrolytes.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Natural Science Foundation of Beijing Municipality

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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