Unprecedentedly high activity and selectivity for hydrogenation of nitroarenes with single atomic Co<sub>1</sub>-N<sub>3</sub>P<sub>1</sub> sites.

Jin, Hongqiang; Li, Peipei; Cui, Peixin; Shi, Jinan; Zhou, Wu; Yu, Xiaohu; Song, Weiguo; Cao, Changyan · Nat Commun · 2022

basic_science · Level V

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Abstract

Transition metal single atom catalysts (SACs) with M<sub>1</sub>-N<sub>x</sub> coordination configuration have shown outstanding activity and selectivity for hydrogenation of nitroarenes. Modulating the atomic coordination structure has emerged as a promising strategy to further improve the catalytic performance. Herein, we report an atomic Co<sub>1</sub>/NPC catalyst with unsymmetrical single Co<sub>1</sub>-N<sub>3</sub>P<sub>1</sub> sites that displays unprecedentedly high activity and chemoselectivity for hydrogenation of functionalized nitroarenes. Compared to the most popular Co<sub>1</sub>-N<sub>4</sub> coordination, the electron density of Co atom in Co<sub>1</sub>-N<sub>3</sub>P<sub>1</sub> is increased, which is more favorable for H<sub>2</sub> dissociation as verified by kinetic isotope effect and density functional theory calculation results. In nitrobenzene hydrogenation reaction, the as-synthesized Co<sub>1</sub>-N<sub>3</sub>P<sub>1</sub> SAC exhibits a turnover frequency of 6560 h<sup>-1</sup>, which is 60-fold higher than that of Co<sub>1</sub>-N<sub>4</sub> SAC and one order of magnitude higher than the state-of-the-art M<sub>1</sub>-N<sub>x</sub>-C SACs in literatures. Furthermore, Co<sub>1</sub>-N<sub>3</sub>P<sub>1</sub> SAC shows superior selectivity (>99%) toward many substituted nitroarenes with co-existence of other sensitive reducible groups. This work is an excellent example of relationship between catalytic performance and the coordination environment of SACs, and offers a potential practical catalyst for aromatic amine synthesis by hydrogenation of nitroarenes.