Relay Catalysis of Fe and Co with Multi‐Active Sites for Specialized Division of Labor in Electrocatalytic Nitrate Reduction Reaction

Author:

Luo Hongxia1,Li Shuangjun2,Wu Ziyang1,Jiang Miaomiao1,Kuang Min1,Liu Yanbiao3,Luo Wei1,Zhang Dieqing2,Yang Jianping1ORCID

Affiliation:

1. State Key Laboratory for Modification of Chemical Fibers and Polymer Materials College of Materials Science and Engineering Donghua University Shanghai 201620 China

2. The Education Ministry Key Lab of Resource Chemistry Joint International Research Laboratory of Resource Chemistry of Ministry of Education Shanghai Key Laboratory of Rare Earth Functional Materials and Shanghai Frontiers Science Center of Biomimetic Catalysis Shanghai Normal University Shanghai 200234 China

3. College of Environmental Science and Engineering Textile Pollution Controlling Engineering Center of Ministry of Ecology and Environmental Donghua University 2999 North Renmin Road Shanghai 201620 China

Abstract

AbstractElectrocatalytic nitrate reduction reaction (NO3RR) driven by renewable energy is a promising technology for the removal of nitrate‐containing wastewater. However, the sluggish kinetics resulted from the complex proton‐coupled electron transfer and various intermediates remain the key barriers for large‐scale application of NO3RR. Herein, a tactic is reported to raise rate of NO3RR and increase selectivity to N2 using bimetal catalyst: Co is inclined to act on the key steps needed in NO3RR process, rate‐determining step (RDS: *NO3 to *NO2, the asterisk means intermediates) and the subsequent *N hydrogenation as well as Fe exhibits the efficient activity for the selectivity‐ determining step (SDS: *NO to *N then to N2) via a relay catalysis mechanism. A removal efficiency of 78.5% and an ultra‐long cycle stability of 60 cycles (12 h per cycle) are achieved on FeCo alloy confined with nitrogen‐doped porous carbon nanofibers (FeCo‐NPCNFs). DFT calculations unveil that the introduction of Co active site not only regulates the d‐band center of FeCo alloy, optimizes the adsorption of intermediates, but also has a strong capacity to supply active hydrogen species. Clearly, this study elucidates the effects of bimetallic relay catalysis on the performance of electrocatalytic NO3RR and offers avenues for designing Fe‐based catalysts to realize the nitrogen‐neutral cycle.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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