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Stimulus-responsive microgels: Design, properties and applications.

机译:刺激响应性微凝胶:设计,性质和应用。

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摘要

Materials science today is a multidisciplinary effort comprising an accelerated convergence of diverse fields spanning the physical, applied, and engineering sciences. This diversity promises to deliver the next generation of advanced functional materials for a wide range of specific applications. In particular, the past decade has seen a growing interest in the development of nanoscale materials for sophisticated technologies. Aqueous colloidal microgels have emerged as a promising class of soft materials for multiple biotechnology applications. The amalgamation of physical, chemical and mechanical properties of microgels with optical properties of nanostructures in hybrid composite particles further enhances the capabilities of these materials. This work covers the general areas of responsive polymer microgels and their composites, and encompasses methods of fabricating microgel-based drug delivery systems for controlled and targeted therapeutic applications.;The latter part of this thesis focuses on the rational development of microgel-based drug delivery systems for controlled and targeted drug release. Specifically, the development of a biofunctionalized, pH-responsive drug delivery system (DDS) is illustrated, and shown to effectively suppress cancer cells when loaded with an anticancer agent. In another chapter, the design of tailored hybrid particles that combine the thermal response of microgels with the light-sensitive properties of gold nanorods to create a DDS for photothermally-induced drug release is discussed. The photothermally-triggered volume transitions of hybrid microgels under physiological conditions are reported, and their suitability for the said application evaluated. In another component of this work, it is explicitly shown that electrostatic interactions were not needed to deposit gold nanorods on poly(NIPAm)-derived particles, thereby eliminating the need for incorporation of charged functional groups in the microgels that are otherwise responsible for large, undesirable shifts and broadening of the phase transition.;The first part of this thesis is devoted to acquainting the reader with the fundamental aspects of the synthesis, functionalization and characteristic properties of stimulus-responsive microgels constructed from poly(N-isopropylacrylamide) (poly(NIPAm)) and other functional comonomers. In particular, the role of electrostatics on the swelling-deswelling transitions of polyampholyte microgels upon exposure to a range of environmental stimuli including pH, temperature, and salt concentration are discussed. The templated synthesis of bimetallic gold and silver nanoparticles in zwitterionic microgels is also described.
机译:当今的材料科学是多学科的工作,包括物理,应用和工程科学领域各个领域的加速融合。这种多样性有望为各种特定应用提供下一代高级功能材料。特别是在过去的十年中,人们对开发用于复杂技术的纳米级材料的兴趣日益浓厚。水性胶体微凝胶已经成为一种有前景的用于多种生物技术应用的软材料。混合复合颗粒中微凝胶的物理,化学和机械特性与纳米结构的光学特性的融合进一步增强了这些材料的功能。这项工作涵盖了响应性聚合物微凝胶及其复合材料的一般领域,并涵盖了用于控制和靶向治疗应用的基于微凝胶的药物输送系统的制造方法。;本论文的后半部分着眼于基于微凝胶的药物输送的合理发展控制和有针对性的药物释放系统。具体而言,说明了生物功能化的pH响应药物递送系统(DDS)的开发,并显示了在装载抗癌剂时能有效抑制癌细胞的现象。在另一章中,讨论了定制的杂化颗粒的设计,该杂化颗粒将微凝胶的热响应与金纳米棒的光敏特性相结合,以创建用于光热诱导药物释放的DDS。报告了在生理条件下杂化微凝胶的光热触发的体积转变,并评估了它们在上述应用中的适用性。在这项工作的另一部分中,明确表明不需要金纳米棒在聚(NIPAm)衍生的粒子上沉积金纳米棒,从而消除了在微凝胶中掺入带电官能团的需要,否则这些电荷会导致较大的,本论文的第一部分致力于使读者熟悉由聚(N-异丙基丙烯酰胺)(poly(N-异丙基丙烯酰胺)构成的刺激响应性微凝胶的合成,功能化和特征性质的基本方面NIPAm))和其他功能性共聚单体。尤其是,讨论了静电对暴露于一系列环境刺激(包括pH,温度和盐浓度)的聚两性电解质微凝胶的溶胀-消融转变的作用。还描述了两性离子微凝胶中双金属金和银纳米颗粒的模板合成。

著录项

  • 作者

    Das, Mallika.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Chemistry General.;Engineering Materials Science.;Chemistry Polymer.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 216 p.
  • 总页数 216
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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