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Selective electroreduction of CO2 to acetone by single copper atoms anchored on N-doped porous carbon.


ABSTRACT: Efficient electroreduction of CO2 to multi-carbon products is a challenging reaction because of the high energy barriers for CO2 activation and C-C coupling, which can be tuned by designing the metal centers and coordination environments of catalysts. Here, we design single atom copper encapsulated on N-doped porous carbon (Cu-SA/NPC) catalysts for reducing CO2 to multi-carbon products. Acetone is identified as the major product with a Faradaic efficiency of 36.7% and a production rate of 336.1??g?h-1. Density functional theory (DFT) calculations reveal that the coordination of Cu with four pyrrole-N atoms is the main active site and reduces the reaction free energies required for CO2 activation and C-C coupling. The energetically favorable pathways for CH3COCH3 production from CO2 reduction are proposed and the origin of selective acetone formation on Cu-SA/NPC is clarified. This work provides insight into the rational design of efficient electrocatalysts for reducing CO2 to multi-carbon products.

SUBMITTER: Zhao K 

PROVIDER: S-EPMC7229121 | biostudies-literature | 2020 May

REPOSITORIES: biostudies-literature

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Selective electroreduction of CO<sub>2</sub> to acetone by single copper atoms anchored on N-doped porous carbon.

Zhao Kun K   Nie Xiaowa X   Wang Haozhi H   Chen Shuo S   Quan Xie X   Yu Hongtao H   Choi Wonyong W   Zhang Guanghui G   Kim Bupmo B   Chen Jingguang G JG  

Nature communications 20200515 1


Efficient electroreduction of CO<sub>2</sub> to multi-carbon products is a challenging reaction because of the high energy barriers for CO<sub>2</sub> activation and C-C coupling, which can be tuned by designing the metal centers and coordination environments of catalysts. Here, we design single atom copper encapsulated on N-doped porous carbon (Cu-SA/NPC) catalysts for reducing CO<sub>2</sub> to multi-carbon products. Acetone is identified as the major product with a Faradaic efficiency of 36.7  ...[more]

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