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T形几何结构的3D金属配合物作为通向金属自由基反应活性的途径

3d Metal Complexes in T-shaped Geometry as a Gateway to Metalloradical Reactivity.

作者信息

Ott Jonas C, Bürgy David, Guan Hairong, Gade Lutz H

机构信息

Anorganisch-Chemisches Institut, Universität Heidelberg, 69120 Heidelberg, Germany.

Department of Chemistry, University of Cincinnati, P.O. Box 210172, Cincinnati, Ohio 45221-0172, United States.

出版信息

Acc Chem Res. 2022 Mar 15;55(6):857-868. doi: 10.1021/acs.accounts.1c00737. Epub 2022 Feb 14.

Abstract

ConspectusLow-valent, low-coordinate 3d metal complexes represent a class of extraordinarily reactive compounds that can act as reagents and catalysts for challenging bond-activation reactions. The pursuit of these electron-deficient metal complexes in low oxidation states demands ancillary ligands capable of providing not only energetic stabilization but also sufficiently high steric bulk at the metal center. From this perspective, pincer ligands are particularly advantageous, as their prearranged, meridional coordination mode scaffolds the active center while the substituents of the peripheral donor atoms provide effective steric shielding for the coordination sphere. In a T-shaped geometry, the transition metal complexes possess a precisely defined vacant coordination site, which, combined with the often observed high-spin electron configuration, exhibits unusually high selectivity of these compounds with respect to one-electron redox chemistry. In light of the intractable reaction pathways typically observed with related electronically unsaturated 3d transition metal complexes, the pincer coordination mode enables the isolation of low-valent compounds with more controlled and unique reactivity. We have thus investigated a series of T-shaped metal(I) complexes using three different types of pincer ligands, which may be regarded as "metalloradicals" due to their selectively exposed unpaired electrons.These compounds display remarkably high thermal stability and represent rarely observed "naked" monovalent metal species featuring both monomeric and dimeric structures. Extensive reactivity studies using various organic substrates highlight a strong tendency of these paramagnetic compounds to undergo one-electron oxidation, leading to the isolation of a plethora of metal(II) species with reduced organic ligands as unusual structural elements. The exploration of symmetric T-shaped Ni(I) complexes as asymmetric catalysts also shows success in enantioselective hydrodehalogenation of geminal dihalogenides. In addition, this specific class of low-valent, low-coordinate complexes can be further diversified by introducing redox-active pincer ligands or building homobimetallic systems with two T-shaped units.This Account focuses on the discussion of selected examples of iron, cobalt, and nickel pincer complexes bearing a [P,N,P] or [N,N,N] donor set; however, their electronic structure and radical-type reactivity can be broadly extended to other pincer systems. The availability of various types of pincer ligands should allow fine-tuning of the reactivity of the T-shaped complexes. Given the unprecedented reactivity observed with these compounds, we expect the studies of T-shaped 3d metal complexes to be a fertile field for advancing base metal catalysis.

摘要

综述低价、低配位的3d金属配合物是一类具有极高反应活性的化合物,可作为试剂和催化剂用于具有挑战性的键活化反应。要获得这些低氧化态的缺电子金属配合物,需要辅助配体不仅能提供能量稳定作用,还能在金属中心提供足够大的空间位阻。从这个角度来看,钳形配体特别有利,因为它们预先排列的经向配位模式支撑着活性中心,而外围供体原子的取代基为配位球提供了有效的空间屏蔽。在T形几何结构中,过渡金属配合物具有一个精确定义的空配位位点,结合经常观察到的高自旋电子构型,这些化合物在单电子氧化还原化学方面表现出异常高的选择性。鉴于与相关电子不饱和3d过渡金属配合物通常观察到的难以处理的反应途径,钳形配位模式能够分离出具有更可控和独特反应性的低价化合物。因此,我们使用三种不同类型的钳形配体研究了一系列T形金属(I)配合物,由于它们选择性暴露的未成对电子,这些配合物可被视为“金属自由基”。这些化合物表现出非常高的热稳定性,代表了很少观察到的具有单体和二聚体结构的“裸”单价金属物种。使用各种有机底物进行的广泛反应性研究突出了这些顺磁性化合物进行单电子氧化的强烈倾向,从而分离出大量具有还原有机配体作为不寻常结构单元的金属(II)物种。将对称T形Ni(I)配合物用作不对称催化剂的探索在偕二卤化物的对映选择性加氢脱卤反应中也取得了成功。此外,通过引入氧化还原活性钳形配体或构建具有两个T形单元的同双核金属体系,可以进一步使这类低价、低配位配合物多样化。本综述重点讨论了带有[P,N,P]或[N,N,N]供体集的铁、钴和镍钳形配合物的选定示例;然而,它们的电子结构和自由基型反应性可以广泛扩展到其他钳形体系。各种类型钳形配体的可用性应允许对T形配合物的反应性进行微调。鉴于这些化合物观察到的前所未有的反应性,我们预计对T形3d金属配合物的研究将成为推进贱金属催化的一个富有成果的领域。

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