高分子化学
单体
磷酸二酯键
氢键
超分子化学
差示扫描量热法
超分子聚合物
聚合
玻璃化转变
化学
聚合物
动态力学分析
非共价相互作用
材料科学
有机化学
分子
物理
基因
热力学
核糖核酸
生物化学
作者
Hisaschi T. Tee,Kaloian Koynov,Tobias Reichel,Frederik R. Wurm
出处
期刊:ACS omega
[American Chemical Society]
日期:2019-05-28
卷期号:4 (5): 9324-9332
被引量:20
标识
DOI:10.1021/acsomega.9b01040
摘要
) was achieved. PPEs with different co-monomer ratios and 0, 20, 40, and 100% of phosphodiester content were synthesized. The phosphodiester groups result in supramolecular interactions between the polymer chains, with the P-OH functionality as an H-bond donor and the P=O group as an H-bond acceptor. A library of unsaturated and saturated PPEs was prepared and analyzed in detail by NMR spectroscopy, size exclusion chromatography, differential scanning calorimetry, thermogravimetry, rheology, and stress-strain measurements. The introduction of the supramolecular cross-links into the aliphatic and hydrophobic PPEs showed a significant impact on the material properties: increased glass-transition and melting temperatures were observed and an increase in the storage modulus of the polymers was achieved. This specific combination of a flexible aliphatic backbone and a supramolecular H-bonding interaction between the chains was maximized in the homopolymer of the phosphodiester monomer, which featured additional properties, such as shape-memory properties, and polymer samples could be healed after cutting. The P-OH groups also showed a strong adhesion toward metal surfaces, which was used together with the shape-memory function in a model device that responds to a temperature stimulus with shape change. This systematic variation of phosphodiesters/phosphotriesters in polyethylene mimics further underlines the versatility of the phosphorus chemistry to build up complex macromolecular architectures.
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