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交联型聚氨酯的形状记忆性能优异。

Post-Crosslinked Polyurethanes with Excellent Shape Memory Property.

机构信息

College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu, 610065, China.

出版信息

Macromol Rapid Commun. 2017 Dec;38(23). doi: 10.1002/marc.201700450. Epub 2017 Oct 30.

Abstract

Shape-memory polymers are highly desirable in implant biomaterials for minimally invasive surgical procedures. However, most of them lack suitable transition temperature, mechanical properties, and biodegradability. Here, a series of shape-memory polyurethanes are synthesized by postcrosslinking in hard-segment domains using a flexible crosslinker. The materials used are all nontoxic and biodegradable. Through postcrosslinking of unsaturated linear polyurethanes with flexible and biodegradable crosslinker, the crosslinked polyurethanes (CPUs) show good mechanical properties, excellent shape-memory property, and repeatability. The post-crosslinking structure and shape-memory mechanism of CPUs are investigated by Fourier transform infrared spectroscopy, differential scanning calorimetry, and dynamic mechanical analysis tests. The crosslinker endows the fixed phase enough crosslinking and inserts in the hard segments to give the fixed phase certain elasticity. The elastic hard segments make them form more hydrogen bonds with soft segments during shape deformation. The low-molecular-weight poly (ε-caprolactone) offers the samples a shape-memory transition temperature at around 37 °C, which is suitable for implant devices in vivo. This work expands CPUs with an elastic crosslinking structure as potential candidates for implant biomaterials. Since the post-crosslinking polymerization is facile, it can be convenient for industrial production.

摘要

形状记忆聚合物在微创外科手术的植入生物材料中非常理想。然而,它们大多数缺乏合适的转变温度、机械性能和可生物降解性。在这里,通过使用柔性交联剂在硬段域中进行后交联,合成了一系列形状记忆型聚氨酯。所使用的材料均为无毒且可生物降解的。通过用柔性和可生物降解的交联剂对不饱和线性聚氨酯进行后交联,交联聚氨酯(CPU)表现出良好的机械性能、优异的形状记忆性能和可重复性。通过傅里叶变换红外光谱、差示扫描量热法和动态力学分析测试研究了 CPU 的后交联结构和形状记忆机制。交联剂赋予固定相足够的交联度并插入硬段中,使固定相具有一定的弹性。弹性硬段使它们在形状变形时与软段形成更多的氢键。低分子量的聚(ε-己内酯)使样品具有约 37°C 的形状记忆转变温度,适用于体内植入装置。这项工作扩展了具有弹性交联结构的 CPU 作为潜在的植入生物材料候选物。由于后交联聚合易于进行,因此可以方便地进行工业生产。

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