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为什么 N/MH 双功能诺里型催化剂中 N-H 功能基的烷基化会导致转化?

Why Does Alkylation of the N-H Functionality within M/NH Bifunctional Noyori-Type Catalysts Lead to Turnover?

机构信息

Chemistry Division, and ‡Materials and Physics Applications Division, Los Alamos National Laboratory , Los Alamos, New Mexico 87545, United States.

出版信息

J Am Chem Soc. 2017 Jan 25;139(3):1245-1260. doi: 10.1021/jacs.6b11666. Epub 2017 Jan 3.

Abstract

Molecular metal/NH bifunctional Noyori-type catalysts are remarkable in that they are among the most efficient artificial catalysts developed to date for the hydrogenation of carbonyl functionalities (loadings up to ∼10 mol %). In addition, these catalysts typically exhibit high C═O/C═C chemo- and enantioselectivities. This unique set of properties is traditionally associated with the operation of an unconventional mechanism for homogeneous catalysts in which the chelating ligand plays a key role in facilitating the catalytic reaction and enabling the aforementioned selectivities by delivering/accepting a proton (H) via its N-H bond cleavage/formation. A recently revised mechanism of the Noyori hydrogenation reaction (Dub, P. A. et al. J. Am. Chem. Soc. 2014, 136, 3505) suggests that the N-H bond is not cleaved but serves to stabilize the turnover-determining transition states (TDTSs) via strong N-H···O hydrogen-bonding interactions (HBIs). The present paper shows that this is consistent with the largely ignored experimental fact that alkylation of the N-H functionality within M/NH bifunctional Noyori-type catalysts leads to detrimental catalytic activity. The purpose of this work is to demonstrate that decreasing the strength of this HBI, ultimately to the limit of its complete absence, are conditions under which the same alkylation may lead to beneficial catalytic activity.

摘要

分子金属/NH 双功能 Noyori 型催化剂的显著特点在于,它们是迄今为止开发的用于羰基官能团氢化的最有效人工催化剂之一(负载量高达约 10 mol%)。此外,这些催化剂通常表现出高的 C═O/C═C 化学选择性和对映选择性。这种独特的性质集传统上与均相催化剂的非常规机制相关联,其中螯合配体在促进催化反应和通过其 N-H 键的断裂/形成来提供/接受质子(H)从而实现上述选择性方面起着关键作用。最近修订的 Noyori 氢化反应机制(Dub, P. A. 等人,J. Am. Chem. Soc. 2014, 136, 3505)表明,N-H 键没有断裂,而是通过强的 N-H···O 氢键相互作用(HBIs)来稳定决定周转的过渡态(TDTS)。本文表明,这与一个在很大程度上被忽视的实验事实一致,即 M/NH 双功能 Noyori 型催化剂中 N-H 官能团的烷基化会导致催化活性降低。这项工作的目的是证明,这种 HBI 强度的降低,最终达到完全不存在的程度,是同样的烷基化可能导致有益的催化活性的条件。

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