Division of Molecular Imaging and Photonics, Department of Chemistry, KU Leuven, Celestijnenlaan 200F, 3001 Leuven, Belgium.
Laboratory for Chemistry of Novel Materials, Materials Research Institute, University of Mons, Place du Parc 20, 7000 Mons, Belgium.
J Am Chem Soc. 2021 Jul 28;143(29):11080-11087. doi: 10.1021/jacs.1c04445. Epub 2021 Jul 20.
We report on the detection and stabilization of a previously unknown two-dimensional (2D) pseudopolymorph of an alkoxy isophthalic acid using lateral nanoconfinement. The self-assembled molecular networks formed by the isophthalic acid derivative were studied at the interface between covalently modified graphite and an organic solvent. When self-assembled on graphite with moderate surface coverage of covalently bound aryl groups, a previously unknown metastable pseudopolymorph was detected. This pseudopolymorph, which was presumably "trapped" in between the surface bound aryl groups, underwent a time-dependent phase transition to the stable polymorph typically observed on pristine graphite. The stabilization of the pseudopolymorph was then achieved by using an alternative nanoconfinement strategy, where the domains of the pseudopolymorph could be formed and stabilized by restricting the self-assembly in nanometer-sized shallow compartments produced by STM-based nanolithography carried out on a graphite surface with a high density of covalently bound aryl groups. These experimental results are supported by molecular mechanics and molecular dynamics simulations, which not only provide important insight into the relative stabilities of the different structures, but also shed light onto the mechanism of the formation and stabilization of the pseudopolymorph under nanoscopic lateral confinement.
我们报告了一种先前未知的二维(2D)假同素异形体的检测和稳定化,该同素异形体是通过侧向外延纳米限域得到的。通过将共价修饰的石墨与有机溶剂之间的界面处的间苯二甲酸衍生物的自组装分子网络进行研究。当在具有共价键合芳基基团中等表面覆盖率的石墨上自组装时,检测到了一种先前未知的亚稳假同素异形体。这种假同素异形体可能被“捕获”在表面结合的芳基基团之间,经历了一个与在原始石墨上通常观察到的稳定同素异形体有关的时变相转变。然后通过使用替代的纳米限域策略来稳定假同素异形体,其中可以通过限制在具有高密度共价键合芳基基团的石墨表面上进行的基于 STM 的纳米光刻产生的纳米级浅隔室中的自组装来形成和稳定假同素异形体的域。这些实验结果得到了分子力学和分子动力学模拟的支持,这些模拟不仅提供了对不同结构相对稳定性的重要见解,而且还揭示了在纳米级横向限域下形成和稳定假同素异形体的机制。