Tang Qiuyu, Jiang Jie, Li Jinjin, Zhao Ling, Xi Zhenhao
State Key Laboratory of Chemical Engineering, School of Chemical Engineering, East China University of Science and Technology, Shanghai 200237, China.
Shanghai Key Laboratory of Advanced Polymeric Materials, School of Materials Science and Engineering, East China University of Science and Technology, Shanghai 200237, China.
Polymers (Basel). 2024 Apr 28;16(9):1229. doi: 10.3390/polym16091229.
Bio-based epoxy resins have received significant attention in terms of concerns regarding carbon emission. Epoxidized soybean oil (ESO) derived from sustainable feedstock has been widely used to blend with traditional diglycidyl ether of bisphenol-A (DGEBA) to replace some of the petroleum-based components. In this work, molecular dynamics (MD) simulations were applied to track the network formation and predict the performance of methyl hexahydrophthalic anhydride (MHHPA)-cured ESO/DGEBA blend systems. The effects of ESO content and cross-linking degree on the mass density, volumetric shrinkage, glass transition temperature (), coefficient of thermal expansion (CTE), Young's modulus, yield strength, and Poisson's ratio of the epoxy resin were systematically investigated. The results show that systems with high ESO content achieve gelation at low cross-linking degree. The value, Young's modulus, and yield strength increase with the increase in cross-linking degree, but the CTE at the glassy state and Poisson's ratio decrease. The comparison results between the simulated and experimental data demonstrated that the MD simulations can accurately predict the thermal and mechanical properties of ESO-based thermosets. This study gains insight into the variation in thermo-mechanical properties of anhydride-cured ESO/DGEBA-based epoxy resins during the cross-linking process and provides a rational strategy for optimizing bio-based epoxy resins.
基于生物基的环氧树脂在碳排放问题上受到了广泛关注。由可持续原料衍生而来的环氧化大豆油(ESO)已被广泛用于与传统的双酚A二缩水甘油醚(DGEBA)共混,以替代部分石油基成分。在这项工作中,应用分子动力学(MD)模拟来跟踪网络形成过程,并预测甲基六氢邻苯二甲酸酐(MHHPA)固化的ESO/DGEBA共混体系的性能。系统研究了ESO含量和交联度对环氧树脂的质量密度、体积收缩率、玻璃化转变温度()、热膨胀系数(CTE)、杨氏模量、屈服强度和泊松比的影响。结果表明,高ESO含量的体系在低交联度下实现凝胶化。随着交联度的增加,值、杨氏模量和屈服强度增大,但玻璃态下的CTE和泊松比减小。模拟数据与实验数据的比较结果表明,MD模拟能够准确预测基于ESO的热固性材料的热性能和力学性能。本研究深入了解了酸酐固化的基于ESO/DGEBA的环氧树脂在交联过程中的热机械性能变化,并为优化生物基环氧树脂提供了合理的策略。