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Scanning probe microscopies for the creation and characterization of interfacial architectures: Studies of alkyl thiolate monolayers at gold.

机译:扫描探针显微镜用于界面结构的创建和表征:金上烷基硫醇盐单层的研究。

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At this time, technology is approaching a point where molecular scale knowledge of interfacial architectures is required for further progress. The successful creation and characterization of functioning molecular scale architectures requires techniques which can probe the molecular structure and properties of these interfaces. Scanning probe microscopy (SPM) offers access to the structural and material properties of interfaces, and when combined with macroscopic characterization techniques results in a powerful interfacial development tool. However, the relative infancy of SPM techniques has dictated that initial investigations concentrate on model interfacial systems as benchmarks for testing the control and characterization capabilities of SPM. One such family of model interfacial systems results from the spontaneous adsorption of alkyl thiols to gold.; This dissertation examines the application of SPM to the investigation of the interfacial properties of these alkyl thiolate monolayers. Structural investigations result in a proposed explanation for counterintuitive correlations between substrate roughness and heterogeneous electron transfer barrier properties. Frictional measurements are used for characterization of the surface free energy of a series of end-group functionalized monolayers, as well as for the material properties of monolayers composed of varying chain length alkyl thiols. Additional investigations used these characterization techniques to monitor the real-time evolution of chemical and electrochemical surface reactions.; The results of these investigations demonstrates the value of SPM technology to the compositional mapping of surfaces, elucidation of interfacial defects, creation of molecularly sized chemically heterogeneous architectures, as well as to the monitoring of surface reactions. However, it is the future which will demonstrate the usefulness of SPM technology to the advancement of science and technology. These investigations are only a prelude to the more adventurous applications to molecular manufacturing, mechanically directed molecular synthesis, and other directions in the rapidly evolving fields of nanotechnology. While SPM will assist in controlling and understanding our current micro-technologies, it will be most crucial to the next wave of the technological development for emerging molecular scale technologies.
机译:目前,技术正接近需要进一步完善界面结构的分子尺度知识的地步。成功创建和表征功能分子规模的体系结构需要能够探测这些界面的分子结构和性质的技术。扫描探针显微镜(SPM)可以访问界面的结构和材料属性,并且与宏观表征技术结合使用时,可以得到功能强大的界面开发工具。但是,SPM技术的相对起步阶段表明,最初的研究集中在模型界面系统上,作为测试SPM的控制和表征功能的基准。一种这样的模型界面系统家族是烷基硫醇自发吸附在金上的结果。本文研究了SPM在这些烷基硫醇盐单分子层界面性质研究中的应用。结构研究得出了关于基板粗糙度与异质电子传输势垒特性之间反直觉相关性的建议解释。摩擦测量用于表征一系列端基官能化单分子层的表面自由能,以及用于由链长不同的烷基硫醇组成的单分子层的材料性能。其他研究使用这些表征技术来监测化学和电化学表面反应的实时演变。这些研究的结果证明了SPM技术对表面组成映射,界面缺陷的阐明,分子大小的化学异质结构的创建以及表面反应监测的价值。但是,正是未来将证明SPM技术对科学和技术进步的用处。这些研究只是在纳米技术飞速发展的领域中更冒险地应用到分子制造,机械指导的分子合成以及其他方向的前奏。尽管SPM将帮助控制和了解我们当前的微技术,但对于新兴的分子规模技术的下一波技术发展而言,这将是至关重要的。

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