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Synthetic approaches to bowl-shaped π-conjugated sumanene and its congeners

机译:碗状π-共轭苏纳的合成方法及其同源物

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摘要

Since the first synthetic report in 2003 by Sakurai et al., sumanene (derived from the Indian ‘Hindi as well as Sanskrit word’ “Suman”, which means “Sunflower”), a beautifully simple yet much effective bowl-shaped C3-symmetric polycyclic aromatic hydrocarbon having three benzylic positions clipped between three phenyl rings in the triphenylene framework has attracted a tremendous attention of researchers worldwide. Therefore, since its first successful synthesis, a variety of functionalized sumanenes as well as heterosumanenes have been developed because of their unique physiochemical properties. For example, bowl-to-bowl inversion, bowl depth, facial selectivity, crystal packing, metal complexes, intermolecular charge transfer systems, cation–π complexation, electron conductivity, optical properties and so on. Keeping the importance of this beautiful scaffold in mind, we compiled all the synthetic routes available for the construction of sumanene and its heteroatom derivatives including Mehta’s first unsuccessful effort up to the latest achievements. Our major goal to write this review article was to provide a quick summary of where the field has been, where it stands at present, and where it might be going in near future. Although several reviews have been published on sumanene chemistry dealing with different aspects but this is the first report that comprehensively describes the ‘all-in-one’ chemistry of the sumanene architecture since its invention to till date. We feel that this attractive review article will definitely help the scientific community working not only in the area of organic synthesis but also in materials science and technology.
机译:自2003年第一个由Sakurai等,Sakurai等,Sakurai等,萨默纳(来自印度的印地语以及Sanskrit Word'“Suman”,这意味着“向日葵”),这是一个精美的简单而有效的碗状C3对称在三苯基框架中具有三个苯环之间的三个苄基位置的多环芳烃在三苯基框架中引起了全球研究人员的巨大关注。因此,由于其首先成功的合成,因此由于其独特的物理化学性质,已经开发了各种官能化的Sumanenes以及异辛烷。例如,碗碗反转,碗深,面部选择性,晶体包装,金属配合物,分子间电荷转移系统,阳离子π络合,电子传导,光学性质等。保持这种美丽的脚手架的重要性,我们编制了所有合成路线,可用于建造苏美洲州和其杂露衍生物,包括Mehta首先取得最新成就的不成功努力。我们撰写这篇审查文章的主要目标是提供一个快速摘要领域的位置,它目前代表,并且在不久的将来可能会发生在哪里。虽然有几次评论已经发表在苏美洲化学处理不同方面,但这是第一报告,全面地描述了自发明以来的苏美洲架构的“一体化”化学。我们认为,这个有吸引力的审查文章肯定会帮助科学界不仅在有机合成领域工作,而且在材料科学和技术方面工作。

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