刚性硫醇自组装单层

Abraham Ulman , Jung F. Kang , Yitzhak Shnidman , Sheng Liao , Rainer Jordan , Gun-Young Choi , Julien Zaccaro , Allan S. Myerson , Miriam Rafailovich , Jonathan Sokolov , Cathy Fleischer
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引用次数: 39

摘要

综述了刚性4-巯基联苯自组装单层膜的制备、结构、性能及应用。联苯部分的刚性特性导致了分子偶极矩的产生,这既影响了在金表面的吸附动力学,也影响了混合SAMs的平衡结构。由于分子间相互排斥作用的存在,Langmuir等温线模型不适合这些联苯硫醇的吸附动力学,因此建立了一个新的Ising模型来拟合动力学数据。SAMs和混合SAMs的平衡结构取决于组装它们的溶液的极性。红外光谱分析表明,在金表面的SAMs中,联苯基团相对于法向表面具有较小的倾斜角度。润湿研究表明,这些sam的表面在几个月内保持稳定,从而提供了可以在分子水平上进行工程设计的稳定模型表面。这种分子工程对于成核和生长研究是重要的。在SAM表面生长的甘氨酸晶体的形态取决于成核甘氨酸层的结构,而成核甘氨酸层的结构又取决于这些分子与SAM表面的氢键。最后,PDMS交联网络与SAM表面的粘附取决于界面氢键的浓度。这种非线性关系表明,弹性体的聚合性质导致了集体氢键效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Self-assembled monolayers of rigid thiols

The preparation, structure, properties and applications of self-assembled monolayers (SAMs) of rigid 4-mercaptobiphenyls are briefly reviewed. The rigid character of the biphenyl moiety results in a molecular dipole moment that affects both the adsorption kinetics on gold surfaces, as well as the equilibrium structure of mixed SAMs. Due to repulsive intermolecular interaction, the Langmuir isotherm model does not fit the adsorption kinetics of these biphenyl thiols, and a new Ising model was developed to fit the kinetics data. The equilibrium structures of SAMs and mixed SAMs depend on the polarity of the solution from which they were assembled. Infrared spectroscopy suggests that biphenyl moieties in SAMs on gold have small tilt angles with respect to the surfaces normal. Wetting studies shows that surfaces of these SAMs are stable for months, thus providing stable model surfaces that can be engineered at the molecular level. Such molecular engineering is important for nucleation and growth studies. The morphology of glycine crystals grown on SAM surfaces depends on the structure of the nucleating glycine layer, which, in turn, depends on the H-bonding of these molecules with the SAM surface. Finally, the adhesion of PDMS cross-linked networks to SAM surfaces depends on the concentration of interfacial H-bonding. This non-linear relationship suggests that the polymeric nature of the elastomer results in a collective H-bonding effect.

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