首页> 外文期刊>The Journal of Organic Chemistry >Anthraphane: An Anthracene-Based, Propeller-Shaped D-3h-Symmetric Hydrocarbon Cyclophane and Its Layered Single Crystal Structures
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Anthraphane: An Anthracene-Based, Propeller-Shaped D-3h-Symmetric Hydrocarbon Cyclophane and Its Layered Single Crystal Structures

机译:蒽:基于蒽的螺旋桨形D-3h对称碳氢环芳烃及其层状单晶结构

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摘要

The novel hydrocarbon propeller-shaped D-3h-symmetric cydophane (3), "anthraphane", was prepared through a revisited and optimized gram-scale synthesis of the key building block anthracene-1,8-ditriflate 7. Anthraphane has a high tendency to crystallize and single crystals in size ranges of 100-200 mu mare easily obtained from different solvents. The crystallization behavior of 3 was extensively studied to unravel packing motifs and determine whether the packing can be steered into a desired direction, so to allow topochemical photopolymerization. SC-XRD shows that anthraphane packs in layers irrespective of the solvent used for crystallization. However, within the layers, intermolecular arrangements and pi-pi interactions of the anthracene units vary strongly. Four interaction motifs for the anthracene moieties are observed and discussed in detail: two types of exclusively edge-to-face (etf), a mixture of edge-to-face and face-to-face (ftf), and no anthracene anthracene interaction at all. To elucidate why an exclusive ftf stacking was not observed, electrostatic potential surface (EPS) calculations with the semiempirical PM3 method were performed. They show qualitatively that the anthracene faces bear a strong negative surface potential, which may be the cause for this cydophane to avoid ftf interactions. This combined crystallographic and computational study provides valuable insights on how to create all-ftf packings.
机译:通过对关键构件蒽-1,8-二甲苯合物7的重新考察和优化的克级合成,制备了新型碳氢化合物螺旋形D-3h对称环庚烷(3)。蒽具有较高的发展趋势。结晶并从不同溶剂容易获得尺寸为100-200亩的母马单晶。对3的结晶行为进行了广泛的研究,以弄清填料的图案并确定填料是否可以导向所需的方向,以便进行拓扑化学光聚合。 SC-XRD显示,无论用于结晶的溶剂如何,蒽酮均会分层堆积。然而,在这些层中,蒽单元的分子间排列和π-π相互作用强烈变化。观察并详细讨论了蒽部分的四个相互作用基序:两种类型的仅边对面(etf),边对面和面对面(ftf)的混合物,并且不存在蒽蒽相互作用完全没有为了阐明为什么未观察到唯一的ftf堆叠,使用半经验PM3方法进行了静电势面(EPS)计算。他们定性地显示出蒽表面具有很强的负表面电势,这可能是该二环避免ftf相互作用的原因。这项结合晶体学和计算学的研究为如何创建全ftf填料提供了宝贵的见识。

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