Research Center for Functional Materials, National Institute for Materials Science, 1-1 Namiki, Tsukuba, Ibaraki, 305-0044, Japan.
Macromol Rapid Commun. 2018 Apr;39(8):e1700825. doi: 10.1002/marc.201700825. Epub 2018 Mar 12.
Glycidyl triazolyl polymer (GTP), which is the product of the Huisgen dipolar cycloaddition reaction between glycidyl azide polymer and alkyne derivatives, is featured here. GTP is the multifunctionalized poly(ethylene glycol) (PEG). The drawback of PEG is that linear PEG has the functional group only at both ends. The low loading capability of the functional groups limits the possibilities of PEG applications. GTP facilitates the synthesis of multifunctionalized PEG derivatives. In this article, 74 examples of GTP homopolymers and copolymers are introduced. The synthetic protocols and work-up processes of GTP are summarized. In addition, application studies are reviewed: for example, stimuli-responsive and self-healing materials, materials for electrical memory devices, ion-conductive materials, and biomedical materials. Finally, some issues on GTP synthesis and future directions for GTP-based polymer materials are proposed.
甘醇三氮唑基聚合物(GTP)是由叠氮化物聚合物与炔烃衍生物的Huisgen 双极性环加成反应生成的产物,它是多功能化的聚乙二醇(PEG)。PEG 的缺点是线性 PEG 仅在两端具有官能团。官能团的低载量能力限制了 PEG 的应用可能性。GTP 促进了多功能化 PEG 衍生物的合成。本文介绍了 74 种 GTP 均聚物和共聚物的实例。总结了 GTP 的合成方案和后处理过程。此外,还综述了应用研究:例如,刺激响应和自修复材料、电记忆器件材料、离子导电材料和生物医学材料。最后,提出了关于 GTP 合成的一些问题和基于 GTP 的聚合物材料的未来发展方向。