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Controlling molecular self-assembly on an insulating surface by rationally designing an efficient anchor functionality that maintains structural flexibility

机译:通过合理设计保持结构灵活性的有效锚固功能来控制绝缘表面上的分子自组装

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摘要

Molecular self-assembly on surfaces is dictated by the delicate balance between intermolecular and molecule–surface interactions. For many insulating surfaces, however, the molecule–surface interactions are weak and rather unspecific. Enhancing these interactions, on the other hand, often puts a severe limit on the achievable structural variety. To grasp the full potential of molecular self-assembly on these application-relevant substrates, therefore, requires strategies for anchoring the molecular building blocks toward the surface in a way that maintains flexibility in terms of intermolecular interaction and relative molecule orientation. Here, we report the design of a site-specific anchor functionality that provides strong anchoring toward the surface, resulting in a well-defined adsorption position. At the same time, the anchor does not significantly interfere with the intermolecular interaction, ensuring structural flexibility. We demonstrate the success of this approach with three molecules from the class of shape-persistent oligo(p-benzamide)s adsorbed onto the calcite(10.4) surface. These molecules have the same aromatic backbone with iodine substituents, providing the same basic adsorption mechanism to the surface calcium cations. The backbone is equipped with different functional groups. These have a negligible influence on the molecular adsorption on the surface but significantly change the intermolecular interaction. We show that distinctly different molecular structures are obtained that wet the surface due to the strong linker while maintaining variability in the relative molecular orientation. With this study, we thus provide a versatile strategy for increasing the structural richness in molecular self-assembly on insulating substrates.
机译:表面上的分子自组装是由分子间相互作用与分子-表面相互作用之间的微妙平衡决定的。但是,对于许多绝缘表面而言,分子与表面之间的相互作用较弱且没有特异性。另一方面,增强这些相互作用通常会严重限制可实现的结构多样性。因此,要掌握分子自组装在这些与应用相关的基材上的全部潜能,就需要以分子间相互作用和相对分子取向保持挠性的方式将分子构件固定在表面上的策略。在这里,我们报告了特定位置的锚固功能的设计,该功能可向表面提供牢固的锚固,从而产生明确的吸附位置。同时,锚不会明显干扰分子间的相互作用,从而确保结构的柔性。我们证明了这种方法的成功,该方法来自吸附在方解石(10.4)表面的形状持久性低聚对苯甲酰胺类分子中的三个分子。这些分子具有相同的带有碘取代基的芳族主链,为表面钙阳离子提供了相同的基本吸附机制。骨干配备了不同的功能组。这些对表面上的分子吸附的影响可忽略不计,但是显着改变了分子间的相互作用。我们表明获得了明显不同的分子结构,该结构由于强的连接子而润湿了表面,同时保持了相对分子取向的可变性。通过这项研究,我们为提高绝缘基板上分子自组装的结构丰富性提供了一种通用的策略。

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