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Updated: Jan 12, 2026

Preparation of Biomass-based Mesoporous Carbon with Higher Nitrogen-/Oxygen-chelating Adsorption for CuII Through Microwave Pre-Pyrolysis
Published on: February 12, 2019
Enhanced Electrosynthesis of Valuable C═N Compounds through Nitrite Reduction via Mesoporous Carbon Supporting Highly
Mingruo Ban1,2, Xiongqin Liu1,2, Yanqiu Shi1,2
1Department of Chemical Engineering, School of Chemistry and Chemical Engineering, Guizhou University, Guiyang, Guizhou 550025, China.
Abstract:
Electrocatalytic C-N reductive coupling provides a promising alternative for wastewater remediation and the sustainable synthesis of cyclohexanone oxime (CHO), a key C═N compound for manufacturing nylon-6. However, it still suffers from low selectivity and Faraday efficiency (FE) due to the reactive intermediates (*NOH, *NHOH, *NH2OH) involved in nitrogen source (e.g., NOx-, NOx) reduction, which preferably convert to NH3 rather than react with cyclohexanone. Based on the favorable properties of single-atom sites for *NH2OH generation and the moderate adsorption of NH2OH on the Fe surface, herein, we prepared an Fe-SAC-MIL-101 catalyst enriched with accessible FeNx monatomic sites by the pyrolysis of NH2-MIL-101(Al), adsorption of the Fe(II)-phenanthroline complex, and secondary annealing. Since a high utilization of FeNx sites was achieved for NO2- reduction to selectively generate *NH2OH, in CHO electrosynthesis from NO2- and cyclohexanone, almost 100% yield and 51.5% FE for CHO were realized at -0.9 V vs Ag/AgCl in H-type cell, with a yield rate of 8.53 g h-1 gcat-1 and a TOF of 0.15 s-1. Both yield (78.8%) and FE (40.6%) were also attained even when the NO2- concentration was decreased to 93 mM. The promotion of exposed FeNx active sites in electrocatalysis performance was demonstrated by a series of electrochemical tests. In situ spectroscopic characterizations also evidenced the selective generation of *NH2OH for cyclohexanone oximation. This work provides a feasible catalyst modification method for promoting *NH2OH generation to facilitate CHO electrosynthesis from nitrogen-containing wastes.
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