对生物基环氧酒精网络的系统研究:突出一步增长的多添加比链增长的阴离子光聚合的优势
Antonella Fantoni1,2, Thomas Koch3, Robert Liska2
1Christian Doppler Laboratory for Advanced Polymers for Biomaterials and 3D Printing, Getreidemarkt 9, Vienna, 1060, Austria.
Macromolecular rapid communications
|August 29, 2024
概括
链传递剂 (CTA) 提高生物基单体聚合速度和网络均性. 这项研究比较了阴离子和阴离子聚合方法,揭示了CTAs.
科学领域:
- 聚合物化学 聚合物化学
- 材料科学 材料科学 材料科学
背景情况:
- 香醇是一种关键的生物基单体前体.
- 乙醇的迪格利基基乙烯 (DGEVA) 通过阴离子聚合产生高性能聚合物.
- 链传递剂 (CTA) 提高了阴离子树脂网络的均性和聚合率.
研究的目的:
- 为了比较离子链增长光聚合与热启动的离子级增长聚合.
- 评估CTA对两种聚合方法的影响.
- 研究由此产生的聚合物的特性,特别是它们作为形状记忆材料的潜力.
主要方法:
- DGEVA.的电离链增长光聚化.
- 热启动的DGEVA的阳离子渐进增长聚合.
- 将CTA添加到两种聚合系统中.
- 聚合物网络均性和机械性质的表征,包括抗拉性.
主要成果:
- CTAs加速聚合反应,用于阴离子和阴离子方法.
- CTAs显著提高了网络的一致性,特别是在阳离子渐进增长聚合过程中.
- 经过高于其玻璃过渡温度 (TG) 的固化聚合物表现出异常的抗拉性 (>5 MJ cm-3).
结论:
- CTA对DGEVA的阴离子和阴离子聚合有益.
- 使用CTA的阳离子渐进增长聚合为高度均的网络提供了一条路径.
- 由此产生的坚固聚合物显示出对形状记忆聚合物应用的前景.
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