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解析高价芳基铜化合物的化学性质及其在使用合成大环配体的铜催化芳基 C-H 键转化反应中的作用。

Unraveling the Chemistry of High Valent Arylcopper Compounds and Their Roles in Copper-Catalyzed Arene C-H Bond Transformations Using Synthetic Macrocycles.

机构信息

MOE Key Laboratory of Bioorganic Phosphorus Chemistry and Chemical Biology, Department of Chemistry, Tsinghua University, Qing Hua Yuan, Haidian District, Beijing 100084, China.

出版信息

Acc Chem Res. 2022 Oct 4;55(19):2796-2810. doi: 10.1021/acs.accounts.2c00316. Epub 2022 Aug 22.

Abstract

Recent decades have witnessed a resurgence of the study of copper-catalyzed organic reactions. As the surrogate of noble metal catalysts, copper salts have been shown to exhibit remarkable versatility in activating various C-H bonds enabling the construction of diverse carbon-carbon and carbon-heteroatom bonds. Advantageously, copper salts are also naturally abundant, inexpensive, and less toxic in comparison to precious metals. Despite significant developments in synthesis, the mechanism of copper catalysis remains elusive. Hypothetical pathways such as the two-electron Cu(III)/Cu(I) and Cu(II)/Cu(0) catalytic cycles and the one-electron Cu(II)/Cu(I) catalytic cycle have been invoked to diagram C-H bond transformations because of the formidable challenges to isolate and characterize transient high valent organocopper intermediates. In fact, organocopper chemistry has been dominated for a long time by the acknowledged nucleophilic organocopper(I) compounds. Since the beginning of the new millennium, we have been systematically studying the supramolecular chemistry of heteracalix[n]aromatics. Owing to the ease of their synthesis and selective functionalizations, self-tunable conformation and cavity structures resulting from the interplay of heteroatoms with aromatic subunits, and outstanding properties in molecular recognition and self-assembly, heteracalix[n]aromatics have become a class of privileged synthetic macrocyclic hosts. Our journey to the chemistry of high valent organocopper compounds started with a serendipitous discovery of the facile formation of a stable organocopper compound, which contains astonishingly a Ph-Cu(III) σ-bond under very mild aerobic conditions. When we examined routinely the effect of the macrocyclic structures on noncovalent complexation properties, titration of tetraazacalix[1]arene[3]pyridine with Cu(ClO)·6HO resulted in the precipitation of dark-purple crystals of phenylcopper(III) diperchlorate. Our curiosity about the transformation of an arene C-H bond into an Ar-Cu(III) bond prompted us to conduct an in-depth investigation of the reaction of macrocyclic arenes with copper(II) salts, leading to the isolation of arylcopper(II) compounds which are unprecedented and the missing link in organocopper chemistry. With structurally well-defined organometallics in hand, we have explored extensively the reactivities of both arylcopper(II) and arylcopper(III) compounds, demonstrating their versatility and uniqueness in chemical synthesis. Novel and fascinating arene C-H transformations under copper catalysis have been developed. Using acquired high valent arylcopper compounds as molecular probes, and employing the functionalizations of tetraazacalix[1]arene[3]pyridines as model reactions, we have revealed the diverse mechanisms of copper-promoted arene C-H bond reactions. Elusive reaction pathways of some copper-catalyzed C-X bond activations have also been unraveled. In the meantime, we have also witnessed pleasingly the rapid development of field with the advent of new high valent organocopper compounds. Without any doubt, studies of the synthesis, reactivity, and catalysis of high valent organocopper compounds have been reshaping the field of organocopper chemistry. This Account summarizes our endeavors to explore the chemistry of structurally well-defined arylcopper(II) and arylcopper(III) compounds and the mechanisms of copper-catalyzed arene C-H and C-X bond transformations. We hope this Account will inspire chemists to study thoroughly the fundamentals and the cutting-edge catalysis of high valent organocopper compounds advancing and redefining the discipline of organocopper chemistry.

摘要

近几十年来,铜催化的有机反应研究再次兴起。作为贵金属催化剂的替代品,铜盐在激活各种 C-H 键方面表现出显著的多功能性,能够构建各种碳-碳和碳-杂原子键。有利的是,与贵金属相比,铜盐在自然界中也丰富、廉价且毒性较小。尽管在合成方面取得了重大进展,但铜催化的机制仍然难以捉摸。假设的途径,如双电子 Cu(III)/Cu(I) 和 Cu(II)/Cu(0)催化循环和单电子 Cu(II)/Cu(I) 催化循环,已被用来描述 C-H 键转化,因为分离和表征瞬态高价有机铜中间体具有巨大的挑战。事实上,有机铜化学长期以来一直由公认的亲核有机铜(I)化合物主导。自新千年开始以来,我们一直在系统地研究杂杯芳烃的超分子化学。由于其合成的简便性和选择性功能化、芳香亚基之间杂原子相互作用产生的自调谐构象和空腔结构,以及在分子识别和自组装方面的出色性能,杂杯芳烃已成为一类特权合成大环主体。我们对高价有机铜化合物化学的研究始于对稳定的有机铜化合物的偶然发现,该化合物在非常温和的有氧条件下惊人地含有 Ph-Cu(III)σ-键。当我们常规检查大环结构对非共价络合性质的影响时,四氮杂杯[1]芳烃[3]吡啶与 Cu(ClO)·6HO 的滴定导致深紫色晶体的沉淀苯基铜(III)高氯酸酯。我们对芳烃 C-H 键转化为 Ar-Cu(III) 键的好奇心促使我们深入研究大环芳烃与铜(II)盐的反应,从而分离出前所未有的芳基铜(II)化合物,这是有机铜化学中缺失的一环。在手性结构明确的有机金属化合物的情况下,我们广泛探索了芳基铜(II)和芳基铜(III)化合物的反应性,展示了它们在化学合成中的多功能性和独特性。在铜催化下开发了新颖而迷人的芳烃 C-H 转化。我们使用获得的高价芳基铜化合物作为分子探针,并采用四氮杂杯[1]芳烃[3]吡啶的功能化作为模型反应,揭示了铜促进芳烃 C-H 键反应的多种机制。一些铜催化的 C-X 键活化的难以捉摸的反应途径也被揭示出来。同时,随着新的高价有机铜化合物的出现,我们也欣喜地见证了该领域的快速发展。毫无疑问,对高价有机铜化合物的合成、反应性和催化作用的研究正在重塑有机铜化学领域。本综述总结了我们探索结构明确的芳基铜(II)和芳基铜(III)化合物化学以及铜催化的芳烃 C-H 和 C-X 键转化机制的努力。我们希望本综述将激发化学家们深入研究高价有机铜化合物的基础和前沿催化作用,推进和重新定义有机铜化学学科。

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