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Research Article

Single site catalyst with enzyme-mimic micro-environment for electroreduction of CO2

Chang Long1,2,§Kaiwei Wan2,3,§Xueying Qiu1,2Xiaofei Zhang1,2Jianyu Han2,3Pengfei An3,4Zhongjie Yang2,3Xiang Li2,3Jun Guo2,3Xinghua Shi2,3Hui Wang2,3Zhiyong Tang2,3Shaoqin Liu1( )
School of Materials Science and Engineering, MOE Key Laboratory of Micro-systems and Micro-structures Manufacturing, Harbin Institute of Technology, Harbin150080, China
CAS key Laboratory of Nanosystem and Hierarchical Fabrication, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing100190, China
University of Chinese Academy of Sciences, Beijing100049, China
Institute of High Energy Physics CAS, Beijing100049, China

§ Chang Long and Kaiwei Wan contributed equally to this work.

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Abstract

Single site catalysts provide a unique platform for mimicking natural enzyme due to their tunable interaction between metal center and coordinated ligand. However, most works have focused on preparing structural and functional models of nature enzyme, with less reports also taking the local chemical environment, i.e., functional/catalytic residues around the active site which is an essential feature of enzymes, into consideration. Herein, we report a Co-centered porphyrinic polymer containing the enzyme-mimic micro-environment, where the linker triazole over CoN4 site enables formation of hydrogen bond with the *COOH intermediate, thus promoting the electrocatalytic reduction of CO2. As-prepared catalyst achieves the CO2-to-CO conversion of 5, 788 h−1 turnover frequency value and near unit (~ 96%) faradaic efficiency at −0.61 V versus reversible hydrogen electrode. This strategy will bring new dimension of designing highly active single-site catalysts.

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Nano Research
Pages 1817-1823

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Cite this article:
Long C, Wan K, Qiu X, et al. Single site catalyst with enzyme-mimic micro-environment for electroreduction of CO2. Nano Research, 2022, 15(3): 1817-1823. https://doi.org/10.1007/s12274-021-3756-6
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Received: 17 May 2021
Revised: 12 July 2021
Accepted: 19 July 2021
Published: 12 August 2021
© Tsinghua University Press and Springer-Verlag GmbH Germany, part of Springer Nature 2021