环氧树脂
环氧化物
材料科学
韧性
玻璃化转变
热稳定性
复合材料
双酚A
网络结构
聚合物
热的
二醇
化学改性
预聚物
高分子化学
分子动力学
化学工程
热膨胀
作者
S. W. Kim,Seunghyok Rho,Jae Jun Kim,Teahoon Park,Youngseok Oh,Jin Woo Yi,won bo Lee,이종찬
标识
DOI:10.1021/acsapm.5c04530
摘要
Anhydride-cured epoxy resins are widely used in diverse applications due to their excellent thermal stability and mechanical strength. In this study, we found that introducing a small amount of a diol compound (bisphenol A, BPA) into the mixture of an epoxide compound (bisphenol A diglycidyl ether, DGEBA) and an anhydride compound (methyl tetrahydrophthalic anhydride, MeTHPA) increased the cross-linking density of the resulting anhydride-cured epoxy resin. The resulting network architecture led to an overall increase in the glass transition temperature, thermal stability, mechanical strength, and toughness of the anhydride-cured epoxy resins. However, excessive BPA addition decreased the cross-linking density, which in turn deteriorated these properties. The effect of incorporating BPA into the cross-linked network structure was further analyzed by molecular dynamics simulations. The simulation revealed that the longer network segment generated by the addition of BPA can facilitate the formation of a dense cross-linked network with increased connectivity and reduced number of structural defects. This integrated experimental and computational study provides insight into structure–property relationships and design principles in anhydride-cured epoxy networks.
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