论文标题

通过机器学习了解聚合物纳米复合材料中的蠕变抑制机制

Understanding Creep Suppression Mechanism in Polymer Nanocomposites through Machine Learning

论文作者

Yang, Entao, Pressly, James F., Natarajan, Bharath, Colby, Robert, Winey, Karen I., Riggleman, Robert A.

论文摘要

尽管最近的努力表明,局部结构如何在均匀玻璃形成材料的动态异质性中起着至关重要的作用,但包含薄膜或复合材料等接口的系统仍然知之甚少。众所周知,接口扰动附近的分子堆积,但是,许多研究表明,动力学在更大的范围内进行了修改。在这里,我们使用仿真和实验的组合检查了聚合物纳米复合材料(PNC)中的动力学,并定量将聚合物堆积的作用与其他对动力学的影响的作用,这是与纳米颗粒表面距离的函数。在玻璃结构和蠕变合规性中表现出良好的定性一致性之后,我们使用最近开发的机器学习技术将模拟PNC中的聚合物动力学分解为与结构依赖性和与结构无关的过程。通过这种分解,聚合物重排的自由能屏障可以描述为堆积依赖性和与包装无关的屏障的组合。我们发现两个障碍在纳米颗粒附近都较高,并且随着施加的应力而减小,从而定量证明,缓慢的界面动力学并不仅仅是由于聚合物堆积差异,而是结构动力学关系的变化。最后,我们介绍如何使用这种分解来准确地预测PNC的应变时间蠕变曲线,从其静态构型中,提供了对聚合物 - 纳米粒子界面对PNC蠕变抑制的影响的更多见解。

While recent efforts have shown how local structure plays an essential role in the dynamic heterogeneity of homogeneous glass-forming materials, systems containing interfaces such as thin films or composite materials remain poorly understood. It is known that interfaces perturb the molecular packing nearby, however, numerous studies show the dynamics are modified over a much larger range. Here, we examine the dynamics in polymer nanocomposites (PNCs) using a combination of simulations and experiments and quantitatively separate the role of polymer packing from other effects on the dynamics, as a function of distance from the nanoparticle surfaces. After showing good qualitative agreement between the simulations and experiments in glassy structure and creep compliance, we use a recently developed machine learning technique to decompose polymer dynamics in our simulated PNCs into structure-dependent and structure-independent processes. With this decomposition, the free energy barrier for polymer rearrangement can be described as a combination of packing-dependent and packing-independent barriers. We find both barriers are higher near nanoparticles and decrease with applied stress, quantitatively demonstrating that the slow interfacial dynamics is not solely due to polymer packing differences, but also the change of structure-dynamics relationships. Finally, we present how this decomposition can be used to accurately predict strain-time creep curves for PNCs from their static configuration, providing additional insights into the effects of polymer-nanoparticle interfaces on creep suppression in PNCs.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源