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Synthesis and characterization of shape memory poly (epsilon-caprolactone) polyurethane-ureas.

机译:形状记忆聚(ε-己内酯)聚氨酯脲的合成与表征。

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摘要

Shape memory polymers (SMPs) have attracted significant interest in recent times because of their potential applications in a number of areas, such as medical devices and textiles. However, there are some major drawbacks of SMPs, such as their relatively low moduli resulting in small recovery stresses, and their long response times compared with shape memory alloys (SMAs). A suitable recovery stress which comes from the elastic recovery stress generated in the deformation process is critical in some medical devices. To address some of these shortcomings, the work in this dissertation mainly focuses on the design and synthesis of linear shape memory polymers with higher recovery stress.;A series of segmented poly (epsilon-caprolactone) polyurethane-ureas (PCLUUs) were prepared from poly (epsilon-caprolactone) (PCL) diol, different dissociates and chain extenders. NMR and FT-IR were used to identify the structure of the synthesized shape memory polyurethane-ureas. Parameters such as soft segment content (molecular weight and content), chain extender and the rigidity of the main chain were investigated to understand the structure-property relationships of the shape memory polymer systems through DSC, DMA, physical property test, etc. Cyclic thermal mechanic tests were applied to measure the shape memory properties which showed that the recovery stress can be improved above 200% simply by modifying the chain extender. Meanwhile, the synthesis process was optimized to be similar to that of Spandex /LYCRA®. Continuous fibers form shape memory polyurethane-ureas were made from a wet spinning process, which indicated excellent spinnability of the polymer solution. Small angle neutron scattering (SANS) was used to study the morphology of the hard segment at different temperatures and stretch rates and found that the monodisperse rigid cylinder model fit the SANS data quite well. From the cylinder model, the radius of the cylinder increased with increasing hard segment content. The SANS results revealed phase separation of hard and soft segments into nano scale domains. The overall objectives of this dissertation were: ▪ To improve the recovery stress of linear shape memory polymers. ▪ To study the morphology and structure property relationships of shape memory polymers.;Chapter 1 reviews the literature on SMAs and SMPs, especially on linear SMPs. Chapter 2 is devoted to SMPUUs with the aliphatic amine 1, 4-Butanediamine (BDA) as chain extender. Chapter 3 reports the effects of different aliphatic diamines as the chain extenders. Chapter 4 covers the results for shape memory polyurethane-ureas with aromatic diamine 4, 4’-Methylenedianiline (MDA) as the chain extender. The effect of different diisocyanates is covered in Chapter 5. Chapter 6-7 show some synthesized polymer systems with unimproved recovery stress or even no shape memory properties. The overall conclusions of this work are reported in Chapter 8.
机译:形状记忆聚合物(SMP)由于在许多领域(例如医疗设备和纺织品)中的潜在应用而引起了人们的极大兴趣。但是,SMP存在一些主要缺点,例如其相对较低的模量导致较小的恢复应力以及与形状记忆合金(SMA)相比响应时间长。在某些医疗器械中,源自变形过程中产生的弹性回复应力的合适回复应力至关重要。针对这些缺点,本论文的工作主要集中在具有较高回复应力的线性形状记忆聚合物的设计与合成上。制备了一系列的聚(ε-己内酯)聚氨酯脲(PCLUUs) (ε-己内酯)(PCL)二醇,不同的离解剂和扩链剂。 NMR和FT-IR用于鉴定合成的形状记忆聚氨酯-脲的结构。研究了软链段含量(分子量和含量),扩链剂和主链的刚度等参数,以通过DSC,DMA,物理性能测试等了解形状记忆聚合物体系的结构-性质关系。循环热进行了机械测试以测量形状记忆性能,结果表明,仅需改性扩链剂,即可将恢复应力提高至200%以上。同时,对合成工艺进行了优化,使其与Spandex /LYCRA®相似。由湿法纺丝工艺制成形状记忆聚氨酯-脲的连续纤维,表明该聚合物溶液具有出色的可纺性。小角度中子散射(SANS)用于研究在不同温度和拉伸速率下硬段的形态,并发现单分散刚性圆柱体模型非常适合SANS数据。根据圆柱模型,圆柱的半径随硬段含量的增加而增加。 SANS结果显示硬链段和软链段相分离成纳米级域。本文的总体目标是:改善线性形状记忆聚合物的回复应力。 ▪研究形状记忆聚合物的形态和结构特性关系。第一章回顾了SMA和SMP,特别是线性SMP的文献。第2章专门讨论以脂肪族胺1,4-丁二胺(BDA)为增链剂的SMPUU。第三章报告了不同脂肪族二胺作为扩链剂的作用。第4章介绍了使用芳香族二胺4、4'-亚甲基二苯胺(MDA)作为扩链剂的形状记忆聚氨酯-脲的结果。第5章介绍了不同的二异氰酸酯的作用。第6-7章显示了一些合成的聚合物体系,其恢复应力没有改善,甚至没有形状记忆性能。这项工作的总体结论在第8章中进行了报告。

著录项

  • 作者

    Ren, Hongfeng.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Chemistry Polymer.;Plastics Technology.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 155 p.
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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