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Ionic Liquid-Modified Thermosets and Their Nanocomposites: Dispersion, Exfoliation, Degradation, and Cure.

机译:离子液体改性的热固性材料及其纳米复合材料:分散,剥落,降解和固化。

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摘要

This dissertation explores the application of a room temperature ionic liquid (RTIL) to problems in the chemistry, processing, and modification of thermosetting polymers. In particular, the solution properties and reaction chemistry of 1-ethyl-3-methyl imidazolium dicyanamide (EMIM-DCN) are applied to problems of nanoparticle dispersion and processing, graphite exfoliation, cyanate ester (CE) cure, and the environmental degradation of CEs.;Nanoparticle Dispersion: Nanocomposite processing can be simplified by using the same compound as both a nanoparticle solvent and an initiator for polymerization. This dual-function molecule can be designed both for solvent potential and reaction chemistry. EMIM-DCN, previously shown by our lab to act as an epoxy initiator, is used in the synthesis of silica and acid expanded graphite composites. These composites are then characterized for particle dispersion and physical properties. Individual particle dispersion of silica nanocomposites is shown, and silica nanocomposites at low loading show individual particle dispersion and improved modulus and fracture toughness. GNP nanocomposites show a 70% increase in modulus along with a 10-order of magnitude increase in electrical conductivity at 6.5 vol%, and an electrical percolation threshold of 1.7 vol%.;Direct Graphite Exfoliation By Laminar Shear: This work presents a laminar-shear alternative to chemical processing and chaotic flow-fields for the direct exfoliation of graphite and the single-pot preparation of nanocomposites. Additionally, we develop the theory of laminar flow through a 3-roll mill, and apply that theory to the latest developments in the theory of graphite interlayer shear. The resulting nanocomposite shows low electrical percolation (0.5 vol%) and low thickness (1-3 layer) graphite/graphene flakes. Additionally, the effect of processing conditions by rheometry and comparison with solvent-free conditions reveal the interactions between processing and matrix properties and provide insight into the theory of the chemical and physical exfoliation of graphite crystals and the resulting polymer matrix dispersion.;Cyanate Ester Cure: Dicyanamide-containing ionic liquids decrease the cure temperature of bi- and tri-functional CEs. During the cure reaction, the dicyanamide anion completely reacts and is incorporated into the triazine network. The cure effect was found in many dicyanamide-containing ionic liquids with diverse cations. This invention creates a novel, ionic thermoset polymer. The dicyanamide initiator provides an alternative to metal and hydroxyl catalysts (which have been shown to accelerate degradation and possess human and environmental toxicity). Additionally, the ionic character of the new polymer, rare among thermosets, lends itself to future research and novel applications. RTIL initiation also paves the way to new CE technologies, including RTIL-CE nanocomposites, prepared by graphite exfoliation and nanocomposite dispersion techniques developed herin.
机译:本文探讨了室温离子液体(RTIL)在热固性聚合物的化学,加工和改性中的应用。特别地,将1-乙基-3-甲基咪唑鎓双氰胺(EMIM-DCN)的溶液性质和反应化学应用于纳米颗粒的分散和加工,石墨剥落,氰酸酯(CE)固化以及CE的环境降解等问题。纳米颗粒分散体:通过使用与纳米颗粒溶剂和聚合引发剂相同的化合物,可以简化纳米复合材料的加工。该双功能分子可以设计用于溶剂电位和反应化学。 EMIM-DCN(以前由我们的实验室证明可充当环氧引发剂)用于合成二氧化硅和酸膨胀石墨复合材料。然后对这些复合材料的颗粒分散性和物理性能进行表征。显示了二氧化硅纳米复合材料的单独的颗粒分散体,并且在低负荷下的二氧化硅纳米复合材料显示了单独的颗粒分散体并改善了模量和断裂韧性。 GNP纳米复合材料的模量增加了70%,在6.5%(体积)时电导率增加了10个数量级,电渗流阈值为1.7%(体积)。层流剪切直接石墨剥落:这项工作表现为层流-化学加工和混沌流场的剪切替代品,用于直接剥落石墨和单罐制备纳米复合材料。此外,我们开发了通过三辊轧机的层流理论,并将该理论应用于石墨夹层剪切理论的最新发展。所得的纳米复合材料显示出低的电渗透(0.5体积%)和低的厚度(1-3层)石墨/石墨烯薄片。此外,流变学方法对加工条件的影响以及与无溶剂条件的比较揭示了加工与基体性质之间的相互作用,并提供了对石墨晶体化学和物理剥落理论以及所得的聚合物基体分散体理论的深入了解。 :含双氰胺的离子液体可降低双功能和三功能CE的固化温度。在固化反应期间,二氰胺阴离子完全反应并结合到三嗪网络中。在许多具有不同阳离子的含双氰胺的离子液体中发现了固化效果。本发明创造了一种新型的离子型热固性聚合物。双氰胺引发剂提供了金属和羟基催化剂的替代品(已证明它们可加速降解并具有人类和环境毒性)。此外,这种新型聚合物的离子特性在热固性材料中很少见,非常适合未来的研究和新颖的应用。 RTIL的引发也为新的CE技术铺平了道路,包括通过石墨剥落法和herin开发的纳米复合材料分散技术制备的RTIL-CE纳米复合材料。

著录项

  • 作者

    Throckmorton, James A.;

  • 作者单位

    Drexel University.;

  • 授予单位 Drexel University.;
  • 学科 Chemical engineering.;Materials science.;Nanoscience.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 170 p.
  • 总页数 170
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:03

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