Synthesis and Characterization of a Polyurethane Phase Separated to Nano Size in Epoxy Polymer

Taehee Kim, Miri Kim, W. Lee, Hyeon‐Gook Kim, Choong‐Sun Lim, Bongkuk Seo
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引用次数: 4

Abstract

Epoxy resins are widely applicable in the aircraft, automobile, coating, and adhesive industries because of their good chemical resistance and excellent mechanical and thermal properties. However, upon external impact, the crack propagation of epoxy polymers weakens the overall impact resistance of these materials. Therefore, many impact modifiers have been developed to reduce the brittleness of epoxy polymers. Polyurethanes, as impact modifiers, can improve the toughness of polymers. Although it is well known that polyurethanes (PUs) are phase-separated in the polymer matrix after curing, connecting PUs to the polymer matrix for enhancing the mechanical properties of polymers has proven to be challenging. In this study, we introduced epoxy functional groups into polyol backbones, which is different from other studies that focused on modifying capping agents to achieve a network structure between the polymer matrix and PU. We confirmed the molecular weight of the prepared PU via gel permeation chromatography. Moreover, the prepared material was added to the epoxies and the resulting mechanical and thermal properties of the materials were evaluated. Furthermore, we conducted tensile, flexural strength, and impact resistance measurements. The addition of PU to the epoxy compositions enhanced their impact strength and maintained their mechanical strength up to 10 phr of PU. Furthermore, the morphologies observed with field emission scanning electron microscopy and transmission electron microscopy proved that the PU was phase separated in the epoxy matrix.
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环氧聚合物中纳米级聚氨酯相的合成与表征
环氧树脂具有良好的耐化学性和优异的机械性能和热性能,广泛应用于飞机、汽车、涂料和胶粘剂等行业。然而,在受到外力冲击时,环氧聚合物的裂纹扩展会削弱这些材料的整体抗冲击性。因此,人们开发了许多抗冲击改性剂来降低环氧聚合物的脆性。聚氨酯作为抗冲击改性剂,可以提高聚合物的韧性。虽然众所周知,聚氨酯(pu)在固化后在聚合物基体中相分离,但将pu连接到聚合物基体以增强聚合物的机械性能已被证明是具有挑战性的。在本研究中,我们将环氧官能团引入多元醇骨架中,这与其他研究的重点是修改封盖剂以实现聚合物基体与PU之间的网络结构不同。我们通过凝胶渗透色谱法确定了制备的PU的分子量。将所制备的材料加入到环氧树脂中,并对所制备的材料的力学性能和热性能进行了评价。此外,我们进行了拉伸,弯曲强度和抗冲击性测量。聚氨酯的加入提高了环氧树脂的冲击强度,并使其机械强度保持在PU的10phr以下。此外,用场发射扫描电镜和透射电镜观察了聚氨酯在环氧基体中的相分离。
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