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Manipulating local coordination of copper single atom catalyst enables efficient CO2-to-CH4 conversion.


ABSTRACT: Electrochemical CO2 conversion to methane, powered by intermittent renewable electricity, provides an entrancing opportunity to both store renewable electric energy and utilize emitted CO2. Copper-based single atom catalysts are promising candidates to restrain C-C coupling, suggesting feasibility in further protonation of CO* to CHO* for methane production. In theoretical studies herein, we find that introducing boron atoms into the first coordination layer of Cu-N4 motif facilitates the binding of CO* and CHO* intermediates, which favors the generation of methane. Accordingly, we employ a co-doping strategy to fabricate B-doped Cu-Nx atomic configuration (Cu-NxBy), where Cu-N2B2 is resolved to be the dominant site. Compared with Cu-N4 motifs, as-synthesized B-doped Cu-Nx structure exhibits a superior performance towards methane production, showing a peak methane Faradaic efficiency of 73% at -1.46 V vs. RHE and a maximum methane partial current density of -462 mA cm-2 at -1.94 V vs. RHE. Extensional calculations utilizing two-dimensional reaction phase diagram analysis together with barrier calculation help to gain more insights into the reaction mechanism of Cu-N2B2 coordination structure.

SUBMITTER: Dai Y 

PROVIDER: S-EPMC10250324 | biostudies-literature | 2023 Jun

REPOSITORIES: biostudies-literature

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Manipulating local coordination of copper single atom catalyst enables efficient CO<sub>2</sub>-to-CH<sub>4</sub> conversion.

Dai Yizhou Y   Li Huan H   Wang Chuanhao C   Xue Weiqing W   Zhang Menglu M   Zhao Donghao D   Xue Jing J   Li Jiawei J   Luo Laihao L   Liu Chunxiao C   Li Xu X   Cui Peixin P   Jiang Qiu Q   Zheng Tingting T   Gu Songqi S   Zhang Yao Y   Xiao Jianping J   Xia Chuan C   Zeng Jie J  

Nature communications 20230608 1


Electrochemical CO<sub>2</sub> conversion to methane, powered by intermittent renewable electricity, provides an entrancing opportunity to both store renewable electric energy and utilize emitted CO<sub>2</sub>. Copper-based single atom catalysts are promising candidates to restrain C-C coupling, suggesting feasibility in further protonation of CO* to CHO* for methane production. In theoretical studies herein, we find that introducing boron atoms into the first coordination layer of Cu-N<sub>4</  ...[more]

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