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混合配体 Mn(I) 夹持配合物催化的羰基化合物的高效氢化反应。

Robust and efficient hydrogenation of carbonyl compounds catalysed by mixed donor Mn(I) pincer complexes.

机构信息

Inorganic Systems Engineering group, Department of Chemical Engineering, Faculty of Applied Sciences, Delft University of Technology, Van der Maasweg 9, 2629 HZ, Delft, The Netherlands.

TheoMAT Group, ChemBio cluster, ITMO University, Lomonosova 9, St, Petersburg, 191002, Russia.

出版信息

Nat Commun. 2021 Jan 4;12(1):12. doi: 10.1038/s41467-020-20168-2.

Abstract

Any catalyst should be efficient and stable to be implemented in practice. This requirement is particularly valid for manganese hydrogenation catalysts. While representing a more sustainable alternative to conventional noble metal-based systems, manganese hydrogenation catalysts are prone to degrade under catalytic conditions once operation temperatures are high. Herein, we report a highly efficient Mn(I)-CNP pre-catalyst which gives rise to the excellent productivity (TOF° up to 41 000 h) and stability (TON up to 200 000) in hydrogenation catalysis. This system enables near-quantitative hydrogenation of ketones, imines, aldehydes and formate esters at the catalyst loadings as low as 5-200 p.p.m. Our analysis points to the crucial role of the catalyst activation step for the catalytic performance and stability of the system. While conventional activation employing alkoxide bases can ultimately provide catalytically competent species under hydrogen atmosphere, activation of Mn(I) pre-catalyst with hydride donor promoters, e.g. KHBEt, dramatically improves catalytic performance of the system and eliminates induction times associated with slow catalyst activation.

摘要

任何催化剂都应该高效且稳定,才能在实际中得到应用。这一要求对于锰氢化催化剂来说尤为重要。虽然锰氢化催化剂代表了一种比传统基于贵金属的体系更为可持续的替代方案,但一旦操作温度较高,它们在催化条件下就容易降解。在此,我们报告了一种高效的 Mn(I)-CNP 前催化剂,它在氢化催化中具有出色的生产力(TOF°高达 41000 h)和稳定性(TON 高达 200000)。该体系能够以低至 5-200 ppm 的催化剂负载量实现酮、亚胺、醛和甲酸酯的近乎定量氢化。我们的分析指出了催化剂活化步骤对体系催化性能和稳定性的关键作用。虽然传统的醇盐碱活化最终可以在氢气气氛下提供催化活性物种,但使用氢化物供体促进剂(如 KHBEt)对 Mn(I)前催化剂进行活化,可显著提高体系的催化性能,并消除与缓慢催化剂活化相关的诱导期。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/25d6/7782525/5e68b30af113/41467_2020_20168_Fig1_HTML.jpg

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