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首页> 外文期刊>Organic & biomolecular chemistry >Efficient active-template synthesis of calix[6]arene-based oriented pseudorotaxanes and rotaxanes
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Efficient active-template synthesis of calix[6]arene-based oriented pseudorotaxanes and rotaxanes

机译:杯[6]芳烃基定向假轮烷和轮烷的有效活性模板合成

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摘要

A substrate can modify its chemical features, including a change of its reactivity, as a consequence of non-covalent interactions upon inclusion within a molecular host. Since the rise of supramolecular chemistry, this phenomenon has stimulated the ingenuity of scientists to emulate the function of enzymes by designing supramolecular systems in which the energetics and selectivity of reactions can be manipulated through programmed host-guest interactions and/or steric confinement. In this paper we investigate how the engulfment of a positively charged pyridinium-based guest inside the π-rich cavity of a tris-(N-phenylureido)calix[6]arene host affects its reactivity towards a S_N2 reaction. We found that the alkylation of complexed substrates leads to the formation of pseudorotaxanes and rotaxanes with faster kinetics and higher yields with respect to the standard procedures exploited so far. More importantly, the strategy described here expands the range of efficient synthetic routes for the formation of mechanically interlocked species with a strict control of the mutual orientation of their non-symmetric molecular components.
机译:由于包含在分子宿主中的非共价相互作用,底物可以修饰其化学特征,包括改变其反应性。自超分子化学的兴起以来,这种现象激发了科学家的创造力,他们通过设计超分子系统来模拟酶的功能,在超分子系统中,可以通过程序化的客体-客体相互作用和/或空间限制来操纵反应的能量和选择性。在本文中,我们研究了三-(N-苯基脲基)杯[6]芳烃主体的π富空腔内带正电荷的基于吡啶鎓的客体的吞噬如何影响其对S_N2反应的反应性。我们发现,相对于迄今开发的标准方法,络合底物的烷基化导致假轮烷和轮烷的形成,具有更快的动力学和更高的产率。更重要的是,此处描述的策略通过严格控制非对称分子组分的相互定向,扩大了形成机械互锁物种的有效合成途径的范围。

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  • 来源
    《Organic & biomolecular chemistry 》 |2017年第32期| 6753-6763| 共11页
  • 作者单位

    Dipartimento di Scienze Chimiche, Della Vita e della Sostenibilità Ambientale, Università di Parma, Parco Area delle Scienze 17/A, Parma, Italy;

    Dipartimento di Chimica G. Ciamician, Università di Bologna, via Selmi 2, Bologna, Italy;

    Dipartimento di Scienze Chimiche, Della Vita e della Sostenibilità Ambientale, Università di Parma, Parco Area delle Scienze 17/A, Parma, Italy;

    Dipartimento di Chimica G. Ciamician, Università di Bologna, via Selmi 2, Bologna, Italy;

    Dipartimento di Scienze e Tecnologie Agro-alimentari, Università di Bologna, viale Fanin 50, Bologna, Italy,Istituto per la Sintesi Organica e la Fotoreattività, Consiglio Nazionale Delle Ricerche, via Gobetti 101, Bologna, Italy;

    Dipartimento di Chimica G. Ciamician, Università di Bologna, via Selmi 2, Bologna, Italy;

    Dipartimento di Scienze Chimiche, Della Vita e della Sostenibilità Ambientale, Università di Parma, Parco Area delle Scienze 17/A, Parma, Italy;

    Dipartimento di Scienze Chimiche, Della Vita e della Sostenibilità Ambientale, Università di Parma, Parco Area delle Scienze 17/A, Parma, Italy;

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