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具有氮杂环卡宾配体的高氧化态3d金属(Ti-Cu)配合物

High-Oxidation-State 3d Metal (Ti-Cu) Complexes with N-Heterocyclic Carbene Ligation.

作者信息

Cheng Jun, Wang Lijun, Wang Peng, Deng Liang

机构信息

State Key Laboratory of Organometallic Chemistry, Center for Excellence in Molecular Synthesis, Shanghai Institute of Organic Chemistry , University of Chinese Academy of Sciences, Chinese Academy of Sciences , 345 Lingling Road , Shanghai 200032 , People's Republic of China.

出版信息

Chem Rev. 2018 Oct 10;118(19):9930-9987. doi: 10.1021/acs.chemrev.8b00096. Epub 2018 Jul 16.

Abstract

High-oxidation-state 3d metal species have found a wide range of applications in modern synthetic chemistry and materials science. They are also implicated as key reactive species in biological reactions. These applications have thus prompted explorations of their formation, structure, and properties. While the traditional wisdom regarding these species was gained mainly from complexes supported by nitrogen- and oxygen-donor ligands, recent studies with N-heterocyclic carbenes (NHCs), which are widely used for the preparation of low-oxidation-state transition metal complexes in organometallic chemistry, have led to the preparation of a large variety of isolable high-oxidation-state 3d metal complexes with NHC ligation. Since the first report in this area in the 1990s, isolable complexes of this type have been reported for titanium(IV), vanadium(IV,V), chromium(IV,V), manganese(IV,V), iron(III,IV,V), cobalt(III,IV,V), nickel(IV), and copper(II). With the aim of providing an overview of this intriguing field, this Review summarizes our current understanding of the synthetic methods, structure and spectroscopic features, reactivity, and catalytic applications of high-oxidation-state 3d metal NHC complexes of titanium to copper. In addition to this progress, factors affecting the stability and reactivity of high-oxidation-state 3d metal NHC species are also presented, as well as perspectives on future efforts.

摘要

高氧化态的3d金属物种在现代合成化学和材料科学中有着广泛的应用。它们也被认为是生物反应中的关键活性物种。这些应用因此促使人们对它们的形成、结构和性质进行探索。虽然关于这些物种的传统认知主要来自于由氮和氧供体配体支持的配合物,但最近使用N-杂环卡宾(NHCs)的研究——N-杂环卡宾在有机金属化学中广泛用于制备低氧化态过渡金属配合物——已经导致制备出了大量可分离的具有NHC配位的高氧化态3d金属配合物。自20世纪90年代该领域的首次报道以来,已经报道了钛(IV)、钒(IV、V)、铬(IV、V)、锰(IV、V)、铁(III、IV、V)、钴(III、IV、V)、镍(IV)和铜(II)的这类可分离配合物。为了概述这个有趣的领域,本综述总结了我们目前对钛到铜的高氧化态3d金属NHC配合物的合成方法、结构和光谱特征、反应性及催化应用的理解。除了这些进展外,还介绍了影响高氧化态3d金属NHC物种稳定性和反应性的因素,以及对未来研究方向的展望。

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