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叶立德取代膦:金催化和钯催化偶联反应的强给体配体平台。

Ylide-Substituted Phosphines: A Platform of Strong Donor Ligands for Gold Catalysis and Palladium-Catalyzed Coupling Reactions.

机构信息

Faculty of Chemistry and Biochemistry, Ruhr-University Bochum, 44801 Bochum, Germany.

出版信息

Acc Chem Res. 2022 Mar 1;55(5):770-782. doi: 10.1021/acs.accounts.1c00797. Epub 2022 Feb 16.

Abstract

The development of homogeneous catalysts is strongly connected to the design of new, sophisticated ligands, which resolve limitations of a given reaction protocol by manipulating the electronic properties of the metal and its spatial environment. Phosphines are a privileged class of ligands that find applications in many catalytic transformations, ranging from hydrogenation reactions to hydroformylation and coupling chemistry. For many years, chemists have been trying to improve the efficiency, selectivity, and application of coupling reactions. The use of highly electron-rich and bulky phosphines was often associated with increased selectivity and efficiency and led to the development of a vast variety of electron-rich alkyl-substituted phosphines. However, this concept of increasing the ligand donor strength reaches its limits with the use of trialkyl-substituted phosphines with tri--butylphosphine thus being one of the most active ligands for many years. In the course of our research efforts to use the special donor strength of ylides to stabilize electron-deficient, low-valent main group compounds, we realized that ylide-substituted phosphine (YPhos) ligands possess remarkably strong donor abilities. Moreover, the YPhos ligands are highly tunable by changing the nature of the groups on the phosphonium, phosphine, or central ylidic carbon atom. We thus obtained a ligand platform with donor capabilities ranging from PCy to even stronger donor abilities than -heterocyclic carbenes, while being more sterically demanding than simple phosphines as well as many well-known biarylphosphine ligands.These properties led us to explore the applicability of the YPhos ligands in catalysis. In a series of recent reports, our group applied YPhos ligands in gold and palladium catalyzed reactions at catalytic loadings applicable for medium- to large-scale applications. The increased donor strength and unique architecture allowed for remarkable activities in a series of transformations at mild reactions conditions. For gold(I)-catalyzed reactions, we obtained turnover numbers (TONs) for the hydroamination of phenylacetylene with aniline of over 20 000. Also, more complex reactions were easily catalyzed with efficiencies greater than those of other known gold(I) catalysts. Similar efficacies were found in a series of palladium-catalyzed coupling reactions. In Buchwald-Hartwig aminations, unprecedented activities for the amination of aryl chlorides were reached at room temperature. The speed of formation of the catalytically active mono-YPhos palladium species allowed for some of the amination reactions to be completed in only a few minutes. Adjustment of the ligand design enabled the use of a large variety of different aryl and alkyl amines of different steric demands. Furthermore, the YPhos ligands in general showed high activities and selectivity in the coupling of a variety of carbon nucleophiles with aryl chlorides, bromides, and triflates. This enabled the development of efficient reaction protocols for the α-arylation of unhindered ketones and the coupling of Grignard and zinc reagents as well as the first efficient coupling of chloroarenes with alkyllithium compounds. This Account summarizes the recent development of YPhos ligands and their application in gold and palladium catalysis. We also hope to stimulate further use of this ligand platform in catalysis in the future.

摘要

均相催化剂的发展与新型复杂配体的设计密切相关,通过改变金属及其空间环境的电子性质,这些配体可以解决给定反应方案的局限性。膦配体是一类具有特权的配体,在许多催化转化中得到了应用,包括氢化反应、氢甲酰化反应和偶联化学。多年来,化学家一直致力于提高偶联反应的效率、选择性和适用性。使用高电子富和大体积膦配体通常与增加选择性和效率相关,并导致了各种富电子烷基取代膦配体的发展。然而,这种增加配体供电子强度的概念在使用三烷基取代膦配体时达到了极限,其中三丁基膦就是多年来最活跃的配体之一。在我们使用叶立德的特殊供电子强度来稳定缺电子、低价主族化合物的研究工作中,我们意识到叶立德取代的膦(YPhos)配体具有非常强的供电子能力。此外,通过改变磷翁、膦或中心叶立德碳原子上的基团的性质,可以高度调整 YPhos 配体。因此,我们获得了一个具有从 PCy 到甚至比杂环卡宾更强供电子能力的配体平台,同时其空间位阻要求比简单膦配体以及许多著名的联芳基膦配体更高。这些性质促使我们在催化中探索 YPhos 配体的适用性。在最近的一系列报告中,我们小组在金和钯催化的反应中应用了 YPhos 配体,其催化负载量适用于中到大规模应用。增加的供电子强度和独特的结构允许在温和的反应条件下进行一系列转化的显著活性。对于金(I)催化的反应,我们在苯乙炔与苯胺的氢胺化反应中获得了超过 20000 的转化率(TON)。此外,与其他已知的金(I)催化剂相比,更复杂的反应也很容易被催化,效率更高。在一系列钯催化的偶联反应中也发现了类似的效率。在 Buchwald-Hartwig 胺化反应中,在室温下达到了芳基氯的胺化前所未有的活性。形成催化活性单 YPhos 钯物种的速度允许一些胺化反应在短短几分钟内完成。通过调整配体设计,可以使用各种具有不同空间位阻要求的不同芳基和烷基胺。此外,YPhos 配体在芳基氯与各种碳亲核试剂的偶联反应中表现出高活性和选择性。这使得开发高效的反应方案成为可能,用于未受阻酮的α-芳基化以及格氏试剂和锌试剂的偶联,以及氯代芳烃与烷基锂化合物的首次有效偶联。本综述总结了 YPhos 配体的最新发展及其在金和钯催化中的应用。我们还希望在未来的催化中进一步使用这种配体平台。

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