之字形分子带:合成、结构和性质。

IF 17.7 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Tan-Hao Shi, Qing-Hui Guo, Shuo Tong, Mei-Xiang Wang
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引用次数: 0

摘要

自1954年Heilbronner提出环芳烃作为假想分子以来,之字形碳氢化合物带及其杂原子掺杂类似物以其美观的结构、有趣的性质和潜在的应用吸引了化学家和材料科学家。除了斯托达特在20世纪80年代末和90年代初利用迭代Diels-Alder反应构建这样的带的工作外,该领域几十年来一直处于休眠状态。这种停滞主要是由于缺乏综合方法。在本世纪初,我们创造了杂环[n]芳烃,由于其易于合成和用途广泛,大环宿主已发展成为超分子化学中的特权大环宿主。杂杯[n]芳烃及其相关的杯[n]芳烃和间苯二酚[n]芳烃的一个显著结构特征是它们能够形成不同的构象。值得注意的是,这些构象可以通过改变环的大小、取代基和合成条件来调整。我们设想,芳香环紧密相连的预组织大环可以提供理想的支架,通过化学键将相邻芳香环包围的每个峡湾缝合起来,形成之字形的分子带。我们以合成应变带[8]芳烃为研究目标。利用锥形构象的间苯二甲酸[8]芳烃和峡湾中酚羟基的易转化,我们通过四次分子内Friedel-Crafts烷基化,成功地将峡湾缝上制备了H8-belt[8]芳烃。随后与DDQ氧化芳构化生成带[8]芳烃-(DDQ)4加合物。在激光照射下,加合物发生了反diols - alder反应,首次形成了带[8]芳烃,这是一条完全共轭的之字形烃带。峡湾缝合法已经发展成为一种多功能和强大的策略。通过多种峡湾聚合反应,如Friedel-Crafts烷基化、酰化和烯烃复分解,合成了不同大小、形状和官能团的烃带。为了通过SNAr反应和过渡金属介导的碳杂原子键偶联架起氧和氮原子之间的桥梁,我们实现了杂原子掺杂烃带的构建。此外,封闭杜鹃花[n](3,5-二溴吡啶)所有湾的CAr-CAr均偶联反应形成了由吡咯和吡啶亚基组成的全局芳香之字形带。根据构造六边形和非六边形碳环或杂环子带的组合,之字形带采用独特而吸引人的结构,以提供从不同的棱镜到截锥和近球面的空腔。在空间和电子效应的控制下,之字形带表现出迷人的光物理和电化学性能,并能与不同的客体形成配合物,具有出色的选择性。本文综述了近年来在探索之字形分子带化学方面所做的努力,重点介绍了之字形分子带分子的合成、独特的结构特征和令人着迷的分子识别特性。我们希望这篇文章能够点燃人们对这一复兴领域的研究兴趣,推动之字形分子带走向实际应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Zigzag-Type Molecular Belts: Synthesis, Structure, and Properties.

ConspectusSince Heilbronner proposed cyclacenes as hypothetical molecules in 1954, zigzag hydrocarbon belts and their heteroatom-doped analogs have captivated chemists and materials scientists with their aesthetically appealing structures, intriguing properties, and potential applications. Except for the work reported in the late 1980s and early 1990s by Stoddart, who employed iterative Diels-Alder reactions to construct such belts, the field has remained dormant for decades. This stagnation is primarily due to the lack of synthetic methods. At the beginning of this millennium, we created heteracalix[n]aromatics, macrocyclic hosts that have since been developed into privileged macrocyclic hosts in supramolecular chemistry due to their ease of synthesis and versatile applications. One of the salient structural features of heteracalix[n]aromatics and related calix[n]arenes and resorcin[n]arenes is their ability to adopt distinct conformations. Notably, these conformations can be tuned by varying the ring sizes, substituents, and synthetic conditions. We envisioned that the preorganized macrocycles with aromatic rings in close proximity could provide ideal scaffolds, and chemical bonding to stitch each fjord encompassed by adjacent aromatic rings would lead to zigzag-type molecular belts. We initiated our study with the aim of synthesizing strained belt[8]arenes. Leveraging the cone-conformational resorcin[4]arenes and facile transformations of phenolic hydroxyl groups in fjords, we successfully prepared H8-belt[8]arenes by stitching fjords through quadruple intramolecular Friedel-Crafts alkylation. Subsequent oxidative aromatization with DDQ produced a belt[8]arene-(DDQ)4 adduct. Upon laser irradiation, the adduct underwent retro-Diels-Alder reactions, enabling for the first time the formation of belt[8]arene, a fully conjugated zigzag hydrocarbon belt. The fjord-stitching method has since evolved into a versatile and powerful strategy. A diversity of hydrocarbon belts having different sizes, shapes, and functional groups have been synthesized through multiple fjord-stitching reactions such as Friedel-Crafts alkylation and acylation and olefin metathesis. To bridge fjords with oxygen and nitrogen atoms through SNAr reactions and transition-metal-mediated carbon-heteroatom bond coupling, we have achieved the construction of heteroatom-doped hydrocarbon belts. In addition, CAr-CAr homocoupling reactions to seal all fjords of azacalix[n](3,5-dibromopyridine)s furnished globally aromatic zigzag-type belts consisting of pyrrole and pyridine subunits. Depending on the combinations of constitutional hexagonal and nonhexagonal carbocyclic or heterocyclic subrings, zigzag-type belts adopt unique and appealing structures to give cavities that range from distinct prisms to truncated cones and nearly spherical frustums. Governed by the steric and electronic effects, zigzag-type belts exhibit intriguing photophysical and electrochemical properties and can form complexes with diverse guests with outstanding selectivity. In this Account, we summarize our endeavors to explore the chemistry of zigzag-type molecular belts with a focus on the synthesis of diverse belt molecules, their unique structural features, and their fascinating molecular recognition properties. We hope that this Account will ignite intensive research interest in this revitalized field, propelling zigzag-type molecular belts toward practical applications.

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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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