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有机锗化合物作为合成和催化中的正交偶联伙伴。

Organogermanes as Orthogonal Coupling Partners in Synthesis and Catalysis.

机构信息

Institute of Organic Chemistry, RWTH Aachen University, Landoltweg 1, 52074 Aachen, Germany.

出版信息

Acc Chem Res. 2020 Nov 17;53(11):2715-2725. doi: 10.1021/acs.accounts.0c00527. Epub 2020 Oct 29.

Abstract

Since the advent of metal-catalyzed cross-coupling technology more than 40 years ago, the field has grown to be ever-increasingly enabling, yet the employed coupling partners are largely still those that were originally employed in the context of Pd-catalyzed cross-coupling, namely, arylboronic esters/acids, aryl silanes, aryl stannanes, or organometallic reagents (RMgX, RZnX). Aryl germanes have little precedent in the literature; they were historically explored in the context of Pd/Pd-catalyzed cross-coupling reactions but were found to be much less reactive than the already established reagents. Consequently, few efforts were made by the community on their further mechanistic or synthetic exploration.In 2019, our group described trialkyl aryl germanes as robust, convenient, and nontoxic reagents. Although structurally similar to trialkyl aryl stannanes or silanes, the GeEt site does not engage in the traditional transmetalation mode of Pd complexes. Our studies instead provided strong support for an unprecedented and orthogonal reactivity of organogermanes that follows electrophilic aromatic substitution (SAr)-type reactivity. This mode of bond activation allowed us to devise a number of synthetic strategies in which the Ge functionality was for the first time more reactive and exclusively functionalized in preference over several of the established coupling partners (, silanes, boronic acids/esters, halogens).Within the past year we have showcased the unique reactivity of organogermanes in C-C and C-X bond-forming transformations. Because of the exquisite mode of bond activation, the new strategies offer access to complementary chemical transformations, tolerating other cross-coupling enabling functionalities, and allow for their further downstream diversification. We have for instance demonstrated that organogermanes can be coupled efficiently with aryl halides under Pd nanoparticle conditions with tolerance of all other established cross-coupling partners, while under homogeneous Pd/Pd catalysis all of the other established groups can be functionalized preferentially over the Ge functionality. We similarly were able to harness this orthogonal reactivity mode in oxidative gold catalysis, where organogermanes proved to be more reactive than the established silanes or boronic esters. We have also developed an orthogonal approach for metal-free halogenation of organogermanes with convenient halogenation agents, offering access to the chemo- and regioselective installation of valuable halide motifs in the presence of alternative groups that can also engage in electrophilic halogenations.In this Account, we wish to provide an overview of (i) the historic versus current reactivity findings and synthetic utility of organogermanes, (ii) the current state of mechanistic understanding of their reactivity, and (iii) the synthetic repertoire and ease of installing the germanium functionality in organic molecules.

摘要

自 40 多年前金属催化交叉偶联技术问世以来,该领域的发展变得越来越强大,但所使用的偶联试剂在很大程度上仍然是最初在 Pd 催化交叉偶联中使用的试剂,即芳基硼酸酯/酸、芳基硅烷、芳基锡烷或有机金属试剂(RMgX、RZnX)。芳基锗在文献中几乎没有先例;它们在 Pd/Pd 催化交叉偶联反应的背景下得到了历史上的探索,但发现它们的反应性比已经建立的试剂要差得多。因此,社区很少在它们的进一步机理或合成探索方面做出努力。2019 年,我们小组将三烷基芳基锗描述为坚固、方便和无毒的试剂。尽管在结构上与三烷基芳基锡烷或硅烷相似,但 GeEt 位点不参与 Pd 配合物的传统转金属化模式。我们的研究反而为有机锗前所未有的和正交的反应性提供了强有力的支持,这种反应性遵循亲电芳香取代(SAr)型反应性。这种键激活模式使我们能够设计出许多合成策略,其中首次发现 Ge 官能团比几种已建立的偶联试剂(硅烷、硼酸/酯、卤素)更具反应性和专一地官能化。在过去的一年里,我们展示了有机锗在 C-C 和 C-X 键形成转化中的独特反应性。由于键激活模式的精致,新策略提供了对互补化学转化的访问,容忍其他交叉偶联使能官能团,并允许进一步的下游多样化。例如,我们已经证明,在钯纳米颗粒条件下,有机锗可以与芳基卤化物有效地偶联,同时容忍所有其他已建立的交叉偶联试剂,而在均相 Pd/Pd 催化下,所有其他已建立的基团都可以优先于 Ge 官能团进行官能化。我们同样能够在氧化金催化中利用这种正交反应模式,其中有机锗比已建立的硅烷或硼酸酯更具反应性。我们还开发了一种与方便的卤化剂进行有机锗无金属卤化的正交方法,在存在也可以参与亲电卤化的其他基团的情况下,提供了在化学和区域选择性安装有价值的卤化物基序的方法。在本账户中,我们希望提供(i)有机锗的历史与当前反应性发现和合成用途的概述,(ii)对其反应性的当前机理理解状态,以及(iii)在有机分子中安装锗官能团的合成曲目和简便性。

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