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首页> 外文期刊>ACS nano >Postassembly chemical modification of a highly ordered organosilane multilayer: New insights into the structure, bonding, and dynamics of self-assembling silane monolayers
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Postassembly chemical modification of a highly ordered organosilane multilayer: New insights into the structure, bonding, and dynamics of self-assembling silane monolayers

机译:高度有序的有机硅烷多层膜的组装后化学改性:对自组装硅烷单分子层的结构,键合和动力学的新见解

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摘要

Experimental evidence derived from a comprehensive study of a self-assembled organosilane multilayer film system undergoing a process of postassembly chemical modification that affects interlayer-located polar groups of the constituent molecules while preserving its overall molecular architecture allows a quantitative evaluation of both the degree of intralayer polymerization and that of interlayer covalent bonding of the silane headgroups in a highly ordered layer assembly of this type. The investigated system consists of a layer-by-layer assembled multilayer of a bifunctional n-alkyl silane with terminal alcohol group that is in situ converted, via a wet chemical oxidation process conducted on the entire multilayer, to the corresponding carboxylic add function. A combined chemical-structural analysis of data furnished by four different techniques, Fourier transform infrared spectroscopy (FTIR), synchrotron X-ray scattering, X-ray photoelectron spectmscopy (XPS), and contact angle measurements, demonstrates that the highly ordered 3 D molecular arrangement of the initial alcohol-silane multilayer stack 6 well preserved upon virtually quantitative conversion of the alcohol to carboxyric add and the concomitant irreversible cleavage of interlayer covalent bonds. Thus, the correlation of quantitative chemical and structural data obtained from such unreacted and fully reacted film samples offers an unprecedented experimental framework within which it becomes possible to differentiate between intralayer and interlayer covalent bonding. In addition, the use of a sufficiently thick multilayer effectively eliminates the interfering contributions of the underlying silicon oxide substrate to both the X-ray scattering and XPS data. The present findings contribute a firm experimental basis to the elucidation of the self-assembly mechanism, the molecular organization, and the modes and dynamics of intra- and interlayer bonding prevailing in highly ordered organosilane films; with further implications for the rational exploitation of some of the unique options such supramolecular surface entities can offer in the advancement of a chemical nanofabrication methodology.
机译:来自对自组装有机硅烷多层膜系统进行全面研究的实验证据,该系统正在进行后组装化学修饰,该修饰会影响组成分子在层间定位的极性基团,同时保留其整体分子结构,从而可以定量评估两个层内的程度这种类型的高度有序的层组件中的聚合反应和硅烷头基的层间共价键结合反应。所研究的系统由具有末端醇基的双官能正烷基硅烷的逐层组装多层组成,该多层官能团通过在整个多层上进行的湿化学氧化工艺原位转化为相应的羧酸加成功能。对通过四种不同技术(傅立叶变换红外光谱(FTIR),同步加速器X射线散射,X射线光电子能谱(XPS)和接触角测量)提供的数据进行化学结构分析的组合,证明了高度有序的3D分子在醇几乎定量地转化成羧基加成以及伴随的层间共价键不可逆地断裂时,良好地保留了初始醇-硅烷多层堆叠6的排列。因此,从这种未反应和完全反应的薄膜样品获得的定量化学和结构数据的相关性提供了前所未有的实验框架,在该框架内,可以区分层内和层间共价键。另外,使用足够厚的多层可以有效地消除下面的氧化硅衬底对X射线散射和XPS数据的干扰作用。目前的发现为阐明自组装机理,分子组织以及在高度有序的有机硅烷薄膜中普遍存在的层间和层间键合的模式和动力学提供了坚实的实验基础。对于合理利用某些独特的选择(如超分子表面实体)可以为化学纳米制造方法的发展提供进一步的启示。

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