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Calix[4]arene-based synthetic nanotubes.

机译:基于杯[4]芳烃的合成纳米管。

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摘要

Nanoscale science and technology represents a tremendous opportunity to gain unprecedented insight into the unique phenomena that exists at the nanometer scale, and to use that knowledge to develop materials and devices with novel characteristics. This dissertation explores the unique properties of calix[4]arene-based synthetic nanotubes, the process of filling and characteristics of materials confined in one dimension.; Chapter 1 provides an overview of recently developed nanoscale materials, particularly single-walled carbon nanotubes and their ability to encapsulate materials in a one-dimensional configuration. Molecules inside carbon nanotubes are reported to exhibit structural and dynamic properties that are not observed in the bulk. Approaches are also discussed towards synthetic nanotubes as a supplement to carbon nanotubes.; Chapter 2 deals with calix[4]arenes as building blocks for constructing nanotubes. Multiple calix[4]arenes in the 1,3-alternate conformation are covalently connected to build robust synthetic nanotubes using conventional organic chemistry protocols. The dimensions of the nanotubes are controlled precisely and easily. They effectively pack into infinite tubular bundles in the solid state.; In Chapter 3, the calix[4]arene-based nanotubes are filled with multiple NO+ guests. They exhibit typical properties of calix[4]arene-NO + complexes as evidenced by UV-vis, 1H NMR and FTIR spectroscopy. The stoichiometry of the complexes reveals the encapsulation of one NO+ guest per calixarene cavity. NO+ guests are entrapped deep inside the nanotube tunnel and experience strong electron donor-acceptor interactions.; In Chapter 4, the dynamics of the filling material inside calix[4]arene nanotubes are discussed. The tunnel of the nanotube allows the NO+ guests to freely rotate along the N-O axis and also tumble within the cavity at room temperature. Though the filled nanotube is stable, it allows the release and re-entry of guests within its hollow structure. NO + can be transferred to and from another host such as 18-crown-6. The guest exchange and dynamics are monitored by conventional spectroscopic techniques.
机译:纳米科学技术代表了一个巨大的机会,可以对纳米级存在的独特现象获得空前的洞察力,并利用这些知识来开发具有新颖特性的材料和装置。本文探讨了杯芳烃[4]芳烃基合成纳米管的独特性能,填充过程和一维材料的特性。第1章概述了最近开发的纳米级材料,尤其是单壁碳纳米管及其以一维结构封装材料的能力。据报道,碳纳米管内部的分子表现出在整体中未观察到的结构和动力学特性。还讨论了合成纳米管作为碳纳米管的补充的方法。第2章将杯[4]芳烃作为构建纳米管的基础。 1,3-交替构型的多个杯[4]芳烃通过常规有机化学方法共价连接以构建坚固的合成纳米管。纳米管的尺寸易于精确控制。它们有效地包装成固态的无限管状束。在第3章中,杯[4]芳烃基纳米管充满了多个NO +客体。它们显示出杯[4]芳烃-NO +配合物的典型性质,如紫外可见,1 H NMR和FTIR光谱所证明。配合物的化学计量显示每个杯芳烃腔中有一个NO +客体的包封。 NO +客体被困在纳米管隧道的深处,并经历强烈的电子供体-受体相互作用。在第四章中,讨论了杯[4]芳烃纳米管内部填充材料的动力学。纳米管的通道允许NO +客体沿N-O轴自由旋转,并在室温下在腔体内翻滚。尽管填充的纳米管是稳定的,但它允许客体在其中空结构内释放和重新进入。 NO +可以与其他主机(例如18-crown-6)进行传输。来宾交换和动态通过常规的光谱技术进行监控。

著录项

  • 作者

    Organo, Voltaire Guanlao.;

  • 作者单位

    The University of Texas at Arlington.;

  • 授予单位 The University of Texas at Arlington.;
  • 学科 Chemistry Organic.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 180 p.
  • 总页数 180
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 有机化学;
  • 关键词

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