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A molecular dynamics study of Young's modulus change of semi-crystalline polymers during degradation by chain scissions

机译:分子链断裂降解过程中半结晶聚合物杨氏模量变化的分子动力学研究

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This paper presents a molecular dynamics study on the change in Young's modulus of semi-crystalline polymers during degradation by chain scissions, which is relevant to the study of mechanical properties of biodegrading polymers. Using a simple polymer model whose structural and mechanical properties are similar to that of a commonly used biodegrading polymer poly(glycolic acid), we combine molecular dynamics and Monte Carlo to model a system of two polymer crystals separated by an amorphous region between them. The polymer chains in the amorphous region are cut randomly to mimic hydrolysis chain scissions. In a series of virtual tensile tests, the systems with various numbers of chain scissions are subjected to a unidirectional deformation. We find that at temperatures below the glass transition temperature of the model polymer, the Young's modulus of the system reduces quickly with the number of chain scissions, while at temperatures above the glass transition temperature, the Young's modulus reduction lags behind the polymer chain scissions. This observation supports the entropy-spring model of amorphous polymers proposed by Wang et al., which suggests that Young's modulus above the glass transition temperature is dominated by the internal energy of the system, while below the glass transition temperature it is dominated by the entropy of the amorphous phase. The numerical study therefore provides a molecular understanding of the widely observed behaviours of semi-crystalline biodegradable polymers.
机译:本文提出了一种分子动力学研究,该研究涉及链断裂引起的半结晶聚合物的杨氏模量变化,这与生物降解聚合物的力学性能研究有关。使用结构和机械性能与常用的生物降解聚合物聚乙醇酸相似的简单聚合物模型,我们结合分子动力学和蒙特卡罗方法对两个聚合物晶体进行系统建模,两个晶体之间被非晶区隔开。无定形区域中的聚合物链被随机切割以模拟水解链断裂。在一系列虚拟拉伸测试中,具有各种链剪的系统将经受单向变形。我们发现,在低于模型聚合物的玻璃化转变温度的温度下,系统的杨氏模量会随着链断裂数的增加而迅速降低,而在高于玻璃化转变温度的温度下,杨氏模量的下降则滞后于聚合物链断裂的量。这一观察结果支持了Wang等人提出的无定形聚合物的熵-弹簧模型,该模型表明,玻璃化温度以上的杨氏模量由系统的内能决定,而玻璃化温度以下的杨氏模量则由熵决定。非晶相。因此,数值研究提供了对半结晶可生物降解聚合物行为的分子理解。

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