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基于氨基膦的模块化设计的过渡金属PNP和PCP钳形配合物:合成及催化应用

Modularly designed transition metal PNP and PCP pincer complexes based on aminophosphines: synthesis and catalytic applications.

作者信息

Benito-Garagorri David, Kirchner Karl

机构信息

Institute of Applied Synthetic Chemistry, Vienna University of Technology, Getreidemarkt 9, A-1060 Vienna, Austria.

出版信息

Acc Chem Res. 2008 Feb;41(2):201-13. doi: 10.1021/ar700129q. Epub 2008 Jan 23.

Abstract

Transition metal complexes are indispensable tools for any synthetic chemist. Ideally, any metal-mediated process should be fast, clean, efficient, and selective and take place in a catalytic manner. These criteria are especially important considering that many of the transition metals employed in catalysis are rare and expensive. One of the ways of modifying and controlling the properties of transition metal complexes is the use of appropriate ligand systems, such as pincer ligands. Usually consisting of a central aromatic backbone tethered to two two-electron donor groups by different spacers, this class of tridentate ligands have found numerous applications in various areas of chemistry, including catalysis, due to their combination of stability, activity, and variability. As we focused on pincer ligands featuring phosphines as donor groups, the lack of a general method for the preparation of both neutral (PNP) and anionic (PCP) pincer ligands using similar precursor compounds as well as the difficulty of introducing chirality into the structure of pincer ligands prompted us to investigate the use of amines as spacers between the aromatic ring and the phosphines. By introduction of aminophosphine and phosphoramidite moieties into their structure, the synthesis of both PNP and PCP ligands can be achieved via condensation reactions between aromatic diamines and electrophilic chlorophosphines (or chlorophosphites). Moreover, chiral pincer complexes can be easily obtained by using building blocks obtained from the chiral pool. Thus, we have developed a modular synthetic strategy with which the steric, electronic, and stereochemical properties of the ligands can be varied systematically. With the ligands in hand, we studied their reactivity towards different transition metal precursors, such as molybdenum, ruthenium, iron, nickel, palladium, and platinum. This has resulted in the preparation of a range of new pincer complexes, including various iron complexes, as well as the first heptacoordinated molybdenum pincer complexes and several pentacoordinated nickel complexes by using a controlled ligand decomposition pathway. In addition, we have investigated the use of some of the complexes as catalysts in different C-C coupling reactions: for example, the palladium PNP and PCP pincer complexes can be employed as catalysts in the well known Suzuki-Miyaura coupling, while the iron PNP complexes catalyze the coupling of aromatic aldehydes with ethyl diazoacetate under very mild reaction conditions to give selectively 3-hydroxyacrylates, which are otherwise difficult to prepare. While this Account presents an overview of current research on the chemistry of P-N bond containing pincer ligands and complexes, we believe that further investigations will give deeper insights into the reactivity and applicability of aminophosphine-based pincer complexes.

摘要

过渡金属配合物是任何合成化学家不可或缺的工具。理想情况下,任何金属介导的过程都应该快速、清洁、高效且具有选择性,并以催化方式进行。考虑到催化中使用的许多过渡金属稀有且昂贵,这些标准尤为重要。修饰和控制过渡金属配合物性质的方法之一是使用合适的配体体系,如钳形配体。这类三齿配体通常由一个中心芳族主链通过不同的间隔基连接到两个双电子供体基团组成,由于其稳定性、活性和可变性的结合,已在包括催化在内的化学各个领域得到了广泛应用。由于我们专注于以膦作为供体基团的钳形配体,缺乏使用类似前体化合物制备中性(PNP)和阴离子(PCP)钳形配体的通用方法,以及将手性引入钳形配体结构的困难促使我们研究使用胺作为芳环和膦之间的间隔基。通过将氨基膦和亚磷酰胺基团引入其结构中,PNP和PCP配体的合成可以通过芳族二胺与亲电氯膦(或氯亚磷酸酯)之间的缩合反应来实现。此外,通过使用从手性库中获得的构建块可以轻松获得手性钳形配合物。因此,我们开发了一种模块化合成策略,利用该策略可以系统地改变配体的空间、电子和立体化学性质。有了这些配体后,我们研究了它们对不同过渡金属前体的反应性,如钼、钌、铁、镍、钯和铂。这导致制备了一系列新的钳形配合物,包括各种铁配合物,以及通过控制配体分解途径制备的首个七配位钼钳形配合物和几个五配位镍配合物。此外,我们还研究了其中一些配合物在不同碳 - 碳偶联反应中作为催化剂的用途:例如,钯的PNP和PCP钳形配合物可用于著名的铃木 - 宫浦偶联反应中作为催化剂,而铁的PNP配合物在非常温和的反应条件下催化芳族醛与重氮乙酸乙酯的偶联反应,选择性地生成3 - 羟基丙烯酸酯,否则很难制备。虽然本综述介绍了当前关于含P - N键的钳形配体和配合物化学的研究概况,但我们相信进一步的研究将更深入地了解基于氨基膦的钳形配合物的反应性和适用性。

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