Breaking Local Charge Symmetry of Iron Single Atoms for Efficient Electrocatalytic Nitrate Reduction to Ammonia

Author:

Xu Jingwen1,Zhang Shengbo2,Liu Hengjie3,Liu Shuang1,Yuan Yuan1,Meng Yahan1,Wang Mingming1,Shen Chunyue1,Peng Qia1,Chen Jinghao1,Wang Xiaoyang1,Song Li3,Li Ke14,Chen Wei1ORCID

Affiliation:

1. Department of Applied Chemistry School of Chemistry and Materials Science Hefei National Research Center for Physical Sciences at the Microscale University of Science and Technology of China 230026 Hefei Anhui China

2. Key Laboratory of Materials Physics Center for Environmental and Energy Nanomaterials Anhui Key Laboratory of Nanomaterials and Nanotechnology CAS Center for Excellence in Nanoscience Institute of Solid State Physics HFIPS Chinese Academy of Sciences 230031 Hefei Anhui China

3. National Synchrotron Radiation Laboratory CAS Center for Excellence in Nanoscience University of Science and Technology of China 230029 Hefei Anhui China

4. Key Laboratory of Agricultural Sensors Ministry of Agriculture and Rural Affairs Anhui Provincial Key Laboratory of Smart Agricultural Technology and Equipment School of Information and Computer Anhui Agricultural University 230036 Hefei Anhui China

Abstract

AbstractThe electrochemical conversion of nitrate pollutants into value‐added ammonia is a feasible way to achieve artificial nitrogen cycle. However, the development of electrocatalytic nitrate‐to‐ammonia reduction reaction (NO3RR) has been hampered by high overpotential and low Faradaic efficiency. Here we develop an iron single‐atom catalyst coordinated with nitrogen and phosphorus on hollow carbon polyhedron (denoted as Fe−N/P−C) as a NO3RR electrocatalyst. Owing to the tuning effect of phosphorus atoms on breaking local charge symmetry of the single‐Fe‐atom catalyst, it facilitates the adsorption of nitrate ions and enrichment of some key reaction intermediates during the NO3RR process. The Fe−N/P−C catalyst exhibits 90.3 % ammonia Faradaic efficiency with a yield rate of 17980 μg h−1 mgcat−1, greatly outperforming the reported Fe‐based catalysts. Furthermore, operando SR‐FTIR spectroscopy measurements reveal the reaction pathway based on key intermediates observed under different applied potentials and reaction durations. Density functional theory calculations demonstrate that the optimized free energy of NO3RR intermediates is ascribed to the asymmetric atomic interface configuration, which achieves the optimal electron density distribution. This work demonstrates the critical role of atomic‐level precision modulation by heteroatom doping for the NO3RR, providing an effective strategy for improving the catalytic performance of single atom catalysts in different electrochemical reactions.

Funder

University of Science and Technology of China

Publisher

Wiley

Subject

General Chemistry,Catalysis

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