Petrović Zoran S, Milić Jelena, Zhang Fan, Ilavsky Jan
Kansas Polymer Research Center, Pittsburg State University, Pittsburg, KS 66762.
Materials Measurement Science Division, National Institute of Standards and Technology, Gaithersburg, MD 20899.
Polymer (Guildf). 2017 Jul 14;121:26-37. doi: 10.1016/j.polymer.2017.05.072. Epub 2017 May 31.
Novel fast response shape-memory polyurethanes were prepared from bio-based polyols, diphenyl methane diisocyanate and butane diol for the first time. The bio-based polyester polyols were synthesized from 9-hydroxynonanoic acid, a product obtained by ozonolysis of fatty acids extracted from soy oil and castor oil. The morphology of polyurethanes was investigated by synchrotron ultra-small angle X-ray scattering, which revealed the inter-domain spacing between the hard and soft phases, the degree of phase separation, and the level of intermixing between the hard and soft phases. We also conducted thorough investigations of the thermal, mechanical, and dielectric properties of the polyurethanes, and found that high crystallization rate of the soft segment gives these polyurethanes unique properties suitable for shape-memory applications, such as adjustable transition temperatures, high degree of elastic elongations, and good mechanical strength. These materials are also potentially biodegradable and biocompatible, therefore suitable for biomedical and environmental applications.
首次使用生物基多元醇、二苯基甲烷二异氰酸酯和丁二醇制备了新型快速响应形状记忆聚氨酯。生物基聚酯多元醇由9-羟基壬酸合成,9-羟基壬酸是通过对从大豆油和蓖麻油中提取的脂肪酸进行臭氧分解得到的产物。通过同步加速器超小角X射线散射研究了聚氨酯的形态,揭示了硬相和软相之间的域间距、相分离程度以及硬相和软相之间的混合水平。我们还对聚氨酯的热性能、机械性能和介电性能进行了深入研究,发现软段的高结晶速率赋予这些聚氨酯适合形状记忆应用的独特性能,如可调节的转变温度、高弹性伸长率和良好的机械强度。这些材料还具有潜在的生物可降解性和生物相容性,因此适用于生物医学和环境应用。