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Regulation of local structure and composition of binary disulfide and thiol self-assembled monolayers using nanografting

机译:使用纳米接枝调节二元二硫键和硫醇自组装单层的局部结构和组成

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摘要

Nanografting is used to create spatial confinement, which enables regulation of self-assembly reaction pathways and outcome. The degree and outcome of this regulation is revealed using binary self-assembled monolayers (SAMs) of organothiols and disulfides. In naturally grown systems, these SAMs have more complex morphology when compared with corresponding binary alkanethiol SAMs. Taller molecules form nanodomains of ellipsoidal cap in shape. These domains arrange in various irregular geometries, including 1D worm-like and 2D branches. This observation differs from binary alkanethiol SAMs, where nanodomains are separated and randomly dispersed. During nanografting, more homogeneous morphology was observed compared with naturally grown layers. By varying nanoshaving speed, the nanodomain structure can be regulated from randomly dispersed to more heterogeneous and, finally, to near natural growth. This trend is very similar to mixed alkanethiol systems, where the domain size and separation increase with increasing speed. Different from the alkanethiol systems, the observed structural variations are due to the changes in surface composition, in addition to domain size, shape, and arrangement.
机译:纳米接枝用于创建空间限制,从而可以调节自组装反应途径和结果。使用有机硫醇和二硫化物的二元自组装单层(SAMs)揭示了这种调节的程度和结果。在自然生长的系统中,与相应的二元链烷硫醇SAM相比,这些SAM具有更复杂的形态。较高的分子在形状上形成椭圆形帽状的纳米域。这些域以各种不规则几何形状排列,包括一维蠕虫状和二维分支。该观察结果不同于二元链烷硫醇SAM,后者的纳米域被分离并随机分散。在纳米接枝过程中,与自然生长的层相比,观察到更均匀的形态。通过改变纳米剃须速度,可以将纳米域结构从随机分散调节到更均质,最后调节到接近自然生长。这种趋势与混合链烷硫醇体系非常相似,在混合烷硫醇体系中,区域大小和分离度随速度增加而增加。与链烷硫醇系统不同,观察到的结构变化是由于表面组成的变化,以及畴尺寸,形状和排列的变化。

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