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通过强交错氢键形成的刚性二聚体产生了紧凑的 1D 超分子螺旋聚合物。

Rigid dimers formed through strong interdigitated H-bonds yield compact 1D supramolecular helical polymers.

机构信息

ISIS/CNRS UMR 7006, Université de Strasbourg, 8 allée Gaspard Monge, 67000 Strasbourg, France.

出版信息

Small. 2011 Feb 7;7(3):342-50. doi: 10.1002/smll.201001419. Epub 2010 Dec 15.

Abstract

Hierarchical self-assembly of small abiotic molecular modules interacting through noncovalent forces is increasingly being used to generate functional structures and materials for electronic, catalytic, and biomedical applications. The greatest control over the geometry in H-bond supramolecular architectures, especially in H-bonded supramolecular polymers, can be achieved by using conformationally rigid molecular modules undergoing self-assembly through strong H-bonds. Their binding strength depends on the multiplicity of the H-bonds, the nature of donor/acceptor pairs and their secondary attractive/repulsive interactions. Here a functionalized molecular module is described, which is capable of self-associating through self-complementary H-bonding patterns comprising four strong and two medium-strength H-bonds to form dimers. The self-association of these phenylpyrimidine-based dimers through directional H-bonding between two lateral pyridin-2(1H)-one units of neighboring molecules allows the formation of highly compact 1D supramolecular polymers by self-assembly on graphite. A concentration-dependent study by scanning tunneling microscopy at the solid-liquid interface, corroborated by dispersion-corrected density functional studies, reveals the controlled generation of either linear supramolecular 2D arrays, or long helical supramolecular polymers with a high shape persistence.

摘要

通过非共价相互作用相互作用的小非生物分子模块的分层自组装越来越多地被用于生成电子、催化和生物医学应用的功能结构和材料。在氢键超分子结构中,特别是在氢键超分子聚合物中,可以通过使用经历通过强氢键自组装的构象刚性分子模块来实现对几何形状的最大控制。它们的结合强度取决于氢键的多重性、供体/受体对的性质以及它们的次级吸引/排斥相互作用。这里描述了一种功能化的分子模块,它能够通过包含四个强氢键和两个中强度氢键的自互补氢键模式自组装形成二聚体。这些基于苯并嘧啶的二聚体通过相邻分子的两个横向吡啶-2(1H)-酮单元之间的定向氢键自组装,允许通过在石墨上自组装形成高度紧凑的 1D 超分子聚合物。在固液界面的扫描隧道显微镜的浓度依赖性研究,得到了色散校正密度泛函研究的证实,揭示了线性超分子 2D 阵列或具有高形状保持的长螺旋超分子聚合物的可控生成。

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