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首页> 外文期刊>Angewandte Chemie >A New Synthetic Strategy towards Molecules with Mechanical Bonds: Nonionic Template Synthesis of Amide-Linked Catenanes and Rotaxanes
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A New Synthetic Strategy towards Molecules with Mechanical Bonds: Nonionic Template Synthesis of Amide-Linked Catenanes and Rotaxanes

机译:具有机械键的分子的新合成策略:酰胺键连接的链烷和轮烷的非离子模板合成

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摘要

After Sauvage et al, and Stoddart et al, had developed the now commonly used and well-established catenane and 10-taxane synthesis utilizing phenanthro-line/Cu~+ and bipyridinium/crown units, a new way to synthesize mechanical bonds was discovered in1992—the synthesis of amide-linked catenanes and lotaxanes around a neutral template. The formation of the template, which leads to the host-guest bond, does not proceed by covalent or ionic interaction, but by weak supramolecular interactions, such ashydrogen bonding, pi-stacking, pi-donor-pi-acceptor interaction, and steric complementarity. The simple synthetic units (arene djcar-boxylic acid dichlorides and diamines) can be varied in an astonishing number of ways, few steps are required to obtain the target molecules, and the yields of these syntheses approach those of ordinary organic syntheses. After the preparation of [2]catenanes, it took only a few years to prepare [2]-, [3]-, and bis[2]-rotaxanes of the amide type The introduction of sulfonamide groups enabled alkylation of the sulfonamide nitrogen atom, and this made chemical reactions with catenanes and rotaxanes feasible. Intra- and intermolecular connections of catenanes and rotaxanes were then possible, and a molecule with the topologyof a "pretzel" has recently been prepared. This allowed new insights into the molecular recognition processes of neutral guest and host substances, as well as further understanding of these processes in template synthesis, isom-erism in catenanes, andthe regioselec-tivity of the formation of catenane iso-mers. Competitive binding studies of guest molecules in the cavity of concave receptors with more than one binding site can be performed. These studies might result in higher synthetic yields of molecules with mechanical bonds and lead to further progress in the development of supramolecular nanostructures and molecular switches.
机译:在Sauvage等人和Stoddart等人利用菲咯啉/ Cu〜+和联吡啶/冠单元开发出现已广泛使用的公认的链烷和10-紫杉烷合成方法之后,1992年发现了一种新的合成机械键的方法-在中性模板周围合成酰胺连接的链烷和Lotaxane。导致主体-客体键的模板的形成不是通过共价或离子相互作用进行,而是通过弱的超分子相互作用进行,例如氢键,π-堆积,π-供体-π-受体相互作用和空间互补性。 。可以以多种方式改变简单的合成单元(亚芳基djcar-羧酸二氯化物和二胺),需要很少的步骤来获得目标分子,并且这些合成的产率接近普通有机合成的产率。制备[2]邻苯二甲酸酯后,仅用了几年的时间就制备了酰胺类型的[2]-,[3]-和双[2]-轮烷。磺酰胺基团的引入使磺酰胺氮原子烷基化,这使得与链烷和轮烷的化学反应变得可行。然后可以将链烯和轮烷的分子内和分子间连接,并且最近已经制备了具有“椒盐脆饼”的拓扑结构的分子。这使人们对中性客体和宿主物质的分子识别过程有了新的认识,并进一步了解了模板合成中这些过程,链烷中的同构异构以及链烷异构体形成的区域选择性。可以对具有多个结合位点的凹型受体腔中的客体分子进行竞争性结合研究。这些研究可能会导致具有机械键的分子的更高合成产率,并导致超分子纳米结构和分子开关的开发进一步发展。

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