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Host–guest cooperative bridged bicyclopolyynic (BBP) open-molecular cages with optical-switching properties

机译:具有光学开关特性的主客体合作桥接双环多炔(BBP)开放分子笼

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The in situ experimental characterization of highly reactive cyclo18carbon using STM-AFM at 5 K has opened a new avenue in the field of carbon chemistry. Owing to its instability, C18 is recognized as a precursor for the synthesis of novel carbon-based structures. Inspired by the polyynic structure of C18, herein, bridged bicyclic molecular cages are rationally designed. Based on state-of-the-art electronic structure methods, the structure, stability, and electronic and photophysical properties of the cages are predicted. The results reveal that the polyynic cages are stable structures that enable host–guest interactions. Further, the open-caged architecture is flexible enough to facilitate reversible switching between endohedral and exohedral configurations. These systems can be regarded as optical switches for promising applications in next-generation functional optical devices that can be operated in the visible range. The report elucidates that the sizeable cage acts as a scavenger and shows a propensity to encapsulate Li and Na with an exclusive endohedral stability. The report reveals that the complexes of the cage with alkali metal atoms exist as charge-separated states (CSSs) in their low-lying energy states. Moreover, the work sheds light on the lower electronic energy levels of alkali metal complexes in a CSS compared with non-CSS based on the contribution of interaction energy components. It is worth mentioning that the properties of complexes can be remarkably modulated by varying the nature and size of the guest/cage, thus opening the opportunity for further modification. It is certain that the work will lay a theoretical foundation and receive widespread attention in both theoretical as well as experimental research.
机译:在5 K下使用STM-AFM对高反应性环[18]碳进行原位实验表征,为碳化学领域开辟了一条新途径。由于其不稳定性,C18被认为是合成新型碳基结构的前体。受C18多元结构的启发,本文合理设计了桥接双环分子笼。基于最先进的电子结构方法,预测了保持架的结构、稳定性以及电子和光物理性能。结果表明,多元笼是能够实现主客体相互作用的稳定结构。此外,开放式笼式结构足够灵活,便于在内面体和外面体配置之间进行可逆切换。这些系统可以被视为光开关,用于可在可见光范围内工作的下一代功能性光学器件中具有前途的应用。该报告阐明了相当大的笼子起到了清道夫的作用,并显示出以独特的内面体稳定性封装Li和Na的倾向。该报告揭示了笼子与碱金属原子的络合物以其低能态的电荷分离态(CSS)存在。此外,该工作揭示了基于相互作用能分的贡献,与非CSS相比,CSS中碱金属配合物的电子能级较低。值得一提的是,通过改变客体/笼子的性质和大小,可以显着调节复合物的性质,从而为进一步修改提供了机会。可以肯定的是,这项工作将奠定理论基础,并在理论和实验研究中受到广泛关注。

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