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Tailored surfaces: Modifying chemical and physical properties at the liquid /solid interface to address optimizing surface chemistry applications.

机译:量身定制的表面:修改液体/固体界面的化学和物理性质,以解决表面化学应用的优化问题。

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摘要

The research presented in this PhD thesis focuses on surface modification techniques to enhance potentially useful behavior of materials on surfaces. The principal objectives of this work include (1) investigating the physico-chemical phenomena at the liquid/substrate interface to enhance current methods of moving meso-scale liquid droplets; (2) developing a polymer brush gradient on silicon to enhance the efficiency in binding and detection of probe molecules; and (3) tailoring a poled substrate by electrostatically binding polar molecules to form a molecular assembly. Research was conducted by varying the physical properties of a liquid in motion (including, surface tension, viscosity) and the characteristics of the substrate upon which the liquid moves. The latter will include both physical and "chemical" roughness (i.e., variation of chemical functionalities present at the surface unit) of the substrate.;We also identified an efficient method of increasing DNA immobilization and hybridization. A polymer brush molecular weight gradient was used as a platform for DNA attachment. Fluorescence microscopy was used to obtain relative fluorescence intensity values indicating DNA hybridization and attachment to the polymer backbone. The microscopy technique provided evidence indicating an increase in DNA attachment to the polymer backbone as the polymer chain length increased.;A method of using self-assembly to develop interactions between a polarized ferroelectric domain and polar molecules was also studied. We demonstrated selective binding of bromoacetic acid to a single faced poled lithium niobate surface using XPS. Thus, a poled substrate was tailored by electrostatically binding polar molecules to form a molecular assembly.
机译:本博士论文中提出的研究集中于表面改性技术,以增强材料在表面上的潜在有用性能。这项工作的主要目的包括:(1)研究液体/基质界面处的物理化学现象,以增强当前移动中尺度液滴的方法; (2)在硅上形成聚合物刷梯度,以提高结合和检测探针分子的效率; (3)通过使极性分子静电结合以形成分子组装体来修饰极化的基底。通过改变运动中液体的物理特性(包括表面张力,粘度)和液体在其上运动的基材的特性来进行研究。后者将包括底物的物理和“化学”粗糙度(即,表面单元上存在的化学功能的变化)。我们还确定了增加DNA固定和杂交的有效方法。聚合物刷分子量梯度用作DNA附着的平台。荧光显微镜用于获得相对荧光强度值,表明DNA杂交并附着在聚合物主链上。显微技术提供了证据,表明随着聚合物链长度的增加,DNA附着在聚合物主链上的现象也增加了。研究了一种利用自组装发展极化铁电结构域与极性分子之间相互作用的方法。我们证明了使用XPS将溴乙酸选择性结合到单面极化铌酸锂表面上。因此,通过静电结合极性分子以形成分子组件来定制极化的基底。

著录项

  • 作者

    Bailey, Tiffani Nicole.;

  • 作者单位

    North Carolina State University.;

  • 授予单位 North Carolina State University.;
  • 学科 Physical chemistry.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 115 p.
  • 总页数 115
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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