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A fundamental study of the modification of elastomeric poly(dimethylsiloxane) and silicon surfaces using polymers and their applications in patterning.

机译:使用聚合物改性弹性体聚二甲基硅氧烷和硅表面的基础研究及其在图案化中的应用。

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摘要

A fundamental study of the polymer functionalization of flat elastomeric poly(dimethylsiloxane) (PDMS) and Silcon wafers is described. Using polymer grafting methodologies such as "grafting onto" and "grafting from" a functional substrate, the development of a novel pattern miniaturization protocol and method for nanoparticle patterning was achieved. Currently, a general strategy for the poly(ethylene glycol) (PEG) functionalization of Silastic RTV elastomeric substrates does not exist in the literature. Our preliminary attempts with the functionalization of elastomeric PDMS suffered from a lack of effective surface functionalization control, primarily as a result of literature inconsistencies and inadequate surface characterization. Therefore, we performed in-depth and quantitative surface analysis of the surface functionality of the elastic PDMS substrates that were used to adopt a modified functionalization strategy. The end result was the development of a dynamic material where the surface energy could be manipulated through simple mechanical stretching.;A new miniaturization protocol, referred to as high-efficiency stepwise contraction and adsorption nanolithography (hSCAN), was demonstrated. A thin film of elastomeric precursor was first cast on a stretched substrate. A designed microstructure was then imprinted and the precursor layer was subsequently cured. The microstructure was miniaturized after the substrate relaxed to its original length. The miniaturized structures can be used as stamps to transfer materials onto a designated support or as molds to produce the structure on another stretched substrate for further miniaturization. The patterning of materials by microcontact printing has been improved with the development of hSCAN. Optical disc media polycarbonate discs were used as master molds in the hSCAN miniaturization protocol with promising results. CD's, DVD's and even Blue-ray polycarbonate discs were miniaturized, and 100 nm features were observed. Additionally using imprint lithography techniques, we developed a novel approach to selectively adhere light-emitting CdSe nanoparticles to Au surfaces in small and well defined patterns. Using microcontact printing techniques, we prepared a patterned self-assembled monolayer (SAM) of thiol ligands on a gold substrate in which the reactive portion of the patterned substrate presented regions of carboxylate functionality. These served as the adhesive domain to bind CdSe nanoparticles through a novel adhesion mechanism.
机译:描述了扁平弹性聚二甲基硅氧烷(PDMS)和Silcon晶片的聚合物功能化的基础研究。使用诸如“移植到”功能基底上和“从”功能基底“移植”之类的聚合物移植方法,实现了新型图案微型化方案和用于纳米颗粒图案化的方法的开发。当前,文献中还没有用于Silastic RTV弹性体基材的聚乙二醇(PEG)功能化的一般策略。我们对弹性体PDMS进行功能化的初步尝试主要是由于文献不一致和表面表征不足而导致缺乏有效的表面功能化控制。因此,我们对弹性PDMS基材的表面功能进行了深入和定量的表面分析,这些基材用于采用改进的功能化策略。最终结果是开发了一种动态材料,该材料可以通过简单的机械拉伸来控制表面能。展示了一种新的小型化方案,称为高效逐步收缩和吸附纳米光刻(hSCAN)。首先将弹性体前体薄膜浇铸在拉伸的基材上。然后压印设计的微结构,随后固化前体层。在基材松弛至其原始长度后,微结构被微型化。小型化的结构可以用作将材料转移到指定支撑物上的印模,也可以用作在另一个拉伸基板上生产结构以进一步小型化的模具。随着hSCAN的发展,通过微接触印刷对材料进行的图案化得到了改善。光盘介质聚碳酸酯光盘在hSCAN小型化协议中用作主模具,具有可喜的结果。 CD,DVD甚至是蓝光聚碳酸酯光盘都被小型化,并且观察到的特征小于100 nm。此外,使用压印光刻技术,我们开发了一种新颖的方法,可以以小而清晰的图案将发光的CdSe纳米粒子选择性地粘附到Au表面。使用微接触印刷技术,我们在金基板上制备了硫醇配体的图案化自组装单层(SAM),其中,图案化基板的反应部分具有羧酸盐官能团区域。这些通过新的粘合机制充当粘合域以结合CdSe纳米颗粒。

著录项

  • 作者

    Ell, John Randall.;

  • 作者单位

    University of California, Davis.;

  • 授予单位 University of California, Davis.;
  • 学科 Chemistry Organic.;Chemistry Polymer.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 318 p.
  • 总页数 318
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 有机化学;工程材料学;高分子化学(高聚物);
  • 关键词

  • 入库时间 2022-08-17 11:38:44

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