Unlocking High Selectivity and Stability of Cobalt-based Catalyst in n-Butanol Amination Reaction

Abstract

Primary amines, exemplified by n-butylamine, serve as critical intermediates in the synthesis of pharmaceuticals and agrochemicals. Amination of n-butanol with ammonia over supported cobalt catalysts represents a promising synthetic route. To enhance the catalytic performance of Co-based amination catalysts, we reported an acid-treated strategy that allows for precise regulation of cobalt speciation. Among the evaluated supports, silicalite-1 demonstrated superior amination performance, attributed to its unique ability to enhance cobalt dispersion and suppress acid-induced side reactions. Through acid treatment, oversized Co3O4 nanoparticles are selectively removed, thereby preserving highly dispersed cobalt species. Under rigorous reaction conditions (WHSV = 2.5 h-1), the acid-treated catalyst achieved 90% selectivity toward n-butylamine, accompanied by improved stability compared to untreated counterparts. Mechanistic investigations revealed that well-dispersed metallic Co0 nanoparticles promoted selective C-N bond formation via efficient coupling, whereas larger cobalt domains facilitated dehydrogenation-driven carbon deposition pathways. This work establishes a clear structure-performance relationship for cobalt-based amination catalysts, offering a blueprint for sustainable amine production.

Supplementary files

Article information

Article type
Paper
Submitted
11 Jun 2025
Accepted
14 Jul 2025
First published
16 Jul 2025

Catal. Sci. Technol., 2025, Accepted Manuscript

Unlocking High Selectivity and Stability of Cobalt-based Catalyst in n-Butanol Amination Reaction

F. Gan, W. Liu, X. Zhang, M. Qian, S. Li, Y. Wang, J. Li, X. Zhu and X. Li, Catal. Sci. Technol., 2025, Accepted Manuscript , DOI: 10.1039/D5CY00700C

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