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σ-Hole and π-Hole Synthon Mimicry in Third-Generation Crystal Engineering: Design of Elastic Crystals

机译:第三代晶体工程中的Σ-孔和π孔合成器模拟:弹性晶体设计

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摘要

Designing elastic crystals is a difficult task and is of relevance in potential applications from materials to biology. Here, multi-step crystal engineering based on shole and π-hole synthon mimicry is performed to obtain binary organic molecular crystals with a high degree of flexibility. A structural model is proposed based only on shole- oriented type-II halogen bonds with their characteristic orthogonal geometry. These σ-hole contacts are then partly replaced by chemically and geometrically similar π-hole synthons to obtain new crystals in the second step. In the final step, all the σ-hole interactions are replaced with π-hole interactions and elastic crystals of non-halogenated compounds are obtained. All the crystals obtained according to our protocols are found to be elastic. When crystals that do not conform to the desired structure type appeared, they were found to be brittle. This underlines the role of orthogonal- type interactions, whether they are of the σ-hole or phole type, in achieving elasticity. This is the first report in which π-hole interactions are used for property engineering. This example may illustrate a new generation of crystal engineering in which a particular property is associated more with topological rather than chemical attributes, although the significance of the latter cannot be completely excluded.
机译:设计弹性晶体是一项艰巨的任务,并且在潜在的应用中与物料到生物学的应用相关。这里,进行基于蜗牛和π孔合成硅的多步骤晶体工程进行,以获得具有高柔韧性的二元有机分子晶体。仅基于具有其特征正交几何形状的蜗牛型II型卤素键的结构模型。然后将这些Σ-孔触点部分地由化学和几何上相似的π孔合成器代替,以在第二步骤中获得新的晶体。在最终步骤中,所有Σ - 空穴相互作用都是用π空穴相互作用代替,得到非卤代化合物的弹性晶体。发现根据我们方案获得的所有晶体被发现是弹性的。当不符合所需的结构类型的晶体出现时,发现它们是脆性的。这强调了正交 - 型相互作用的作用,无论是σ孔还是盗版,在实现弹性方面都是如此。这是第一个报告,其中π孔相互作用用于物业工程。该示例可以说明新一代的晶体工程,其中特定属性与拓扑而不是化学属性相关,尽管后者的意义不能完全排除。

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