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直接观察 C-H 键活化催化中普遍存在的协同金属化脱质子步骤的微观反转。

Direct Observation of the Microscopic Reverse of the Ubiquitous Concerted Metalation Deprotonation Step in C-H Bond Activation Catalysis.

机构信息

Department of Chemistry, University of York, Heslington, York YO10 5DD, U.K.

Central Laser Facility, STFC Rutherford Appleton Laboratory, Harwell Science and Innovation Campus, Didcot, Oxfordshire OX11 0QX, U.K.

出版信息

J Am Chem Soc. 2021 Jan 27;143(3):1356-1364. doi: 10.1021/jacs.0c10409. Epub 2021 Jan 11.

DOI:10.1021/jacs.0c10409
PMID:33428402
Abstract

The ability of carboxylate groups to promote the direct functionalization of C-H bonds in organic compounds is unquestionably one of the most important discoveries in modern chemical synthesis. Extensive computational studies have indicated that this process proceeds through the deprotonation of a metal-coordinated C-H bond by the basic carboxylate, yet experimental validation of these predicted mechanistic pathways is limited and fraught with difficulty, mainly as rapid proton transfer is frequently obscured in ensemble measures in multistep reactions (i.e., a catalytic cycle consisting of several steps). In this paper, we describe a strategy to experimentally observe the microscopic reverse of the key C-H bond activation step underpinning functionalization processes (viz. M-C bond protonation). This has been achieved by utilizing photochemical activation of the thermally robust precursor [Mn(ppy)(CO)] (ppy = metalated 2-phenylpyridine) in neat acetic acid. Time-resolved infrared spectroscopy on the picosecond-millisecond time scale allows direct observation of the states involved in the proton transfer from the acetic acid to the cyclometalated ligand, providing direct experimental evidence for the computationally predicted reaction pathways. The power of this approach to probe the mechanistic pathways in transition-metal-catalyzed reactions is demonstrated through experiments performed in toluene solution in the presence of PhCH and HOAc. These allowed for the observation of sequential displacement of the metal-bound solvent by the alkyne, C-C bond formation though insertion in the Mn-C bond, and a slower protonation step by HOAc to generate the product of a Mn(I)-catalyzed C-H bond functionalization reaction.

摘要

羧酸基团促进有机化合物中 C-H 键的直接功能化的能力无疑是现代化学合成中最重要的发现之一。广泛的计算研究表明,这个过程是通过金属配位的 C-H 键被碱性羧酸去质子化来进行的,但这些预测的反应机制途径的实验验证是有限的,并且充满了困难,主要是因为在多步反应(即由几个步骤组成的催化循环)的总体测量中,快速质子转移经常被掩盖。在本文中,我们描述了一种实验观察功能化过程中关键 C-H 键活化步骤微观反转(即 M-C 键质子化)的策略。这是通过利用热稳定前体[Mn(ppy)(CO)](ppy=金属化 2-苯基吡啶)在纯乙酸中的光化学激活来实现的。皮秒-毫秒时间尺度的时间分辨红外光谱允许直接观察涉及从乙酸到环金属化配体的质子转移的状态,为计算预测的反应途径提供了直接的实验证据。通过在甲苯溶液中进行的实验,证明了这种方法在过渡金属催化反应中探测反应机制途径的能力,实验中存在 PhCH 和 HOAc。这些实验允许观察到金属结合的溶剂通过炔烃的顺序取代,C-C 键通过 Mn-C 键的插入形成,以及较慢的 HOAc 质子化步骤生成 Mn(I)催化的 C-H 键功能化反应的产物。

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