Modulating the Electronic Structure of Cobalt in Molecular Catalysts via Coordination Environment Regulation for Highly Efficient Heterogeneous Nitrate Reduction

Author:

Sun Libo12,Dai Chencheng23,Wang Tianjiao2,Jin Xindie2,Xu Zhichuan J.23,Wang Xin14ORCID

Affiliation:

1. Department of Chemistry City University of Hong Kong, Kowloon 999077 Hong Kong SAR P. R. China

2. Cambridge Centre for Advanced Research and Education in Singapore Ltd (Cambridge CARES) CREATE Tower Singapore 138602 Singapore

3. School of Material Science and Engineering Nanyang Technological University 50 Nanyang Avenue Singapore 639798 Singapore

4. Hong Kong Branch of National Precious Metals Material Engineering Research Center City University of Hong Kong, Kowloon 999077 Hong Kong SAR P. R. China

Abstract

AbstractAmmonia (NH3) is pivotal in modern industry and represents a promising next‐generation carbon‐free energy carrier. Electrocatalytic nitrate reduction reaction (eNO3RR) presents viable solutions for NH3 production and removal of ambient nitrate pollutants. However, the development of eNO3RR is hindered by lacking the efficient electrocatalysts. To address this challenge, we synthesized a series of macrocyclic molecular catalysts for the heterogeneous eNO3RR. These materials possess different coordination environments around metal centers by surrounding subunits. Consequently, electronic structures of the active centers can be altered, enabling tunable activity towards eNO3RR. Our investigation reveals that metal center with an N2(pyrrole)‐N2(pyridine) configuration demonstrates superior activity over the others and achieves a high NH3 Faradaic efficiency (FE) of over 90 % within the tested range, where the highest FE of approximately 94 % is obtained. Furthermore, it achieves a production rate of 11.28 mg mgcat−1 h−1, and a turnover frequency of up to 3.28 s−1. Further tests disclose that these molecular catalysts with diverse coordination environments showed different magnetic moments. Theoretical calculation results indicate that variated coordination environments can result in a d‐band center variation which eventually affects rate‐determining step energy and calculated magnetic moments, thus establishing a correlation between electronic structure, experimental activity, and computational parameters.

Funder

National Research Foundation Singapore

City University of Hong Kong

Innovation and Technology Commission

Publisher

Wiley

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