Issue 4, 2023

Cobaloximes: selective nitrite reduction catalysts for tandem ammonia synthesis

Abstract

Herein, we demonstrate cobaloximes as a bioinspired molecular platform for exclusive ammonia synthesis via electrocatalytic NO2 reduction (eNO2RR), which attained 98.5% faradaic efficiency (FE) under close-to-neutral conditions. Mechanistic studies illustrated that cobaloximes furnished effective binding with NO2 and nitrogenous intermediates, along with continuous, rapid 6e/8H+ transfer with an intramolecular hydrogen bonding framework. As the cobaloxime skeleton displayed tunable structures on axial and equatorial sites for selective NO2 to NH4+ transformation, integrating cobaloximes with multi-walled carbon nanotubes (MWCNTs) as working electrodes attained advantageous ammonia yields of 19.3 mg h−1 mgCat−1 with >95% FE at −0.5 V vs. RHE. More strikingly, cobaloxime-catalyzed NO2 to NH4+ transformation was coupled with plasma-driven N2 oxidation (pNOR) to convert ambient air into NH4Cl at a mmol-scale. This work demonstrates promising prospects of bioinspired molecular catalytic platforms for effective and selective ammonia and nitrogenous chemical synthesis via NOx.

Graphical abstract: Cobaloximes: selective nitrite reduction catalysts for tandem ammonia synthesis

Supplementary files

Article information

Article type
Paper
Submitted
08 Dec 2022
Accepted
10 Feb 2023
First published
10 Feb 2023

Energy Environ. Sci., 2023,16, 1590-1596

Cobaloximes: selective nitrite reduction catalysts for tandem ammonia synthesis

S. Meng, C. Zhang, C. Ye, J. Li, S. Zhou, L. Zhu, X. Li, C. Tung and L. Wu, Energy Environ. Sci., 2023, 16, 1590 DOI: 10.1039/D2EE03956G

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