Boosting Electrocatalytic Carbon Dioxide Reduction via Self‐Relaxation of Asymmetric Coordination in Fe‐Based Single Atom Catalyst

Author:

Jin Zhaoyong1,Jiao Dongxu1,Dong Yilong1,Liu Lin1,Fan Jinchang1,Gong Ming1,Ma Xingcheng1,Wang Ying1,Zhang Wei1,Zhang Lei2,Gen Yu Zhi3,Voiry Damien4,Zheng Weitao1,Cui Xiaoqiang1ORCID

Affiliation:

1. School of Materials Science and Engineering Key Laboratory of Automobile Materials of MOE Electron Microscopy Center Jilin University 130012 Changchun China

2. College of Chemistry Jilin University 130012 Changchun China

3. Institute of High Performance Computing (IHPC) Agency for Science Technology and Research (A*STAR) 1 Fusionopolis Way, #16-16 Connexis 138632 Singapore Singapore

4. Institut Européen des Membranes IEM UMR 5635 Université Montpellier ENSCM CNRS 34000 Montpellier France

Abstract

AbstractAddressing the limitations arising from the consistent catalytic behavior observed for various intermediates during the electrochemical carbon dioxide reduction reaction (CO2RR) poses a significant challenge in the optimization of catalytic activity. In this study, we aimed to address this challenge by constructing an asymmetric coordination Fe single atom catalyst (SCA) with a dynamically evolved structure. Our catalyst, consisting of a Fe atom coordinated with one S atom and three N atoms (Fe−S1N3), exhibited exceptional selectivity (CO Faradaic efficiency of 99.02 %) and demonstrated a high intrinsic activity (TOF of 7804.34 h−1), and remarkable stability. Using operando XAFS spectra and Density Functional Theory (DFT) calculations, we elucidated the self‐relaxation of geometric distortion and dynamic evolution of bond lengths within the catalyst. These structure changes enabled independent regulation of the *COOH and *CO intermediate adsorption energies, effectively breaking the linear scale relationship and enhancing the intrinsic activity of CO2RR. This study provides valuable insights into the dynamic evolution of SACs and paves the way for targeted catalyst designs aimed to disrupt the linear scaling relationships.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

General Medicine

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