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α-环糊精催化的手性破缺与 Harata-Kodaka 规则精确调控超分子自组装手性。

α-Cyclodextrin-Catalyzed Symmetry Breaking and Precise Regulation of Supramolecular Self-Assembly Handedness with Harata-Kodaka's Rule.

机构信息

Beijing National Laboratory for Molecular Sciences (BNLMS), State Key Laboratory for Structural Chemistry of Unstable and Stable Species, College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, P. R. China.

出版信息

ACS Nano. 2021 Dec 28;15(12):19621-19628. doi: 10.1021/acsnano.1c06766. Epub 2021 Oct 28.

Abstract

Harata-Kodaka's rule predicting the induced chirality of the guest molecules by cyclodextrins has been discovered in the 1970-1990s, yet its ability to control the supramolecular handedness of self-assembled structures has not been sufficiently recognized. Here we show that in a coordinating self-assembly system that is able to form racemic cone shells symmetry breaking occurs if the ligand is prethreaded into α-cyclodextrin prior to metal ion addition, and the handedness of cone shells can be rationally manipulated by creating the two scenarios of the Harata-Kadaka rule through controlling the host-guest dynamics. Since the coordination complexes have strong self-assembling ability, the coordinating ligand would dethread from the cavity of α-cyclodextrin but leaving the induced chirality to the coordinating self-assembly, thus catalyzing symmetry breaking. This work reveals that the dynamic factors such as concentration and molar ratio may play important roles in symmetry breaking at the supramolecular level. The current strategy provides a promising method for the symmetry breaking and manipulation of the handedness of self-assembled materials formed by achiral molecules.

摘要

在 20 世纪 70 年代至 90 年代发现了 Harata-Kodaka 规则,该规则预测了环糊精对客体分子的诱导手性,但它对手性超分子自组装结构的控制能力尚未得到充分认识。在这里,我们展示了在一个配位自组装体系中,如果配体在加入金属离子之前预先穿入α-环糊精,那么就能够打破旋光性的锥形壳对称性,并且通过控制主体-客体动力学来创建 Harata-Kadaka 规则的两种情况,可以合理地操纵锥形壳的手性。由于配位配合物具有很强的自组装能力,配位配体将从α-环糊精的腔中脱螺纹,但将诱导的手性留给配位自组装,从而催化对称性破缺。这项工作表明,在超分子水平上,浓度和摩尔比等动态因素可能在对称破缺中起重要作用。目前的策略为手性分子形成的自组装材料的对称性破缺和手性操纵提供了一种有前途的方法。

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