Electrochemical Synthesis of Urea: Co‐Reduction of Nitrite and Carbon Dioxide on Binuclear Cobalt Phthalocyanine

Author:

Zhang Rui1,Hu Wenhui1,Liu Jingjing1,Xu Kaidi1,Liu Yi1,Yao Yahong1,Liu Minmin1,Zhang Xia‐Guang2,Li Hong3ORCID,He Peng4,Huo Shengjuan1

Affiliation:

1. International Joint Laboratory of Catalytic Chemistry Department of Chemistry Institute for Sustainable Energy College of Sciences Shanghai University No. 99 Shangda Road Shanghai 200444 China

2. Key Laboratory of Green Chemical Media and Reactions Ministry of Education Collaborative Innovation Center of Henan Province for Green Manufacturing of Fine Chemicals College of Chemistry and Chemical Engineering Henan Normal University Xinxiang 453007 China

3. Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials Collaborative Innovation Center of Chemistry for Energy Materials Department of Chemistry Fudan University Shanghai 200438 China

4. Department of Chemical and Biomolecular Engineering University of Notre Dame Notre Dame ID 46556 USA

Abstract

AbstractExploration of molecular catalysts with the atomic‐level tunability of molecular structures offers promising avenues for developing high‐performance catalysts for the electrochemical co‐reduction reaction of carbon dioxide (CO2) and nitrite (NO2) into value‐added urea. In this work, a binuclear cobalt phthalocyanine (biCoPc) catalyst is prepared through chemical synthesis and applied as a C─N coupling catalyst toward urea. Achieving a remarkable Faradaic efficiency of 47.4% for urea production at –0.5 V versus reversible hydrogen electrode (RHE), this biCoPc outperforms many known molecular catalysts in this specific application. Its unique planar macromolecular structure and the increased valence state of cobalt promote the adsorption of nitrogenous and carbonaceous species, a critical factor in facilitating the multi‐electron C─N coupling. Combining highly sensitive in situ attenuated total reflection surface‐enhanced infrared absorption spectroscopy (ATR‐SEIRAS) with density functional theory (DFT) calculations, the linear adsorbed CO (COL) and bridge adsorbed CO (COB) is captured on biCoPc catalyst during the co‐reduction reaction. COB, a pivotal intermediate in the co‐reduction from CO2 and nitrite to urea, is evidenced to be labile and may be attacked by nitrite, promoting urea production. This work demonstrates the importance of designing molecular catalysts for efficient co‐reduction of CO2 and nitrite to urea.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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