Arbe Arantxa, Alvarez Fernando, Colmenero Juan
Centro de Física de Materiales (CSIC, UPV/EHU) and Materials Physics Center MPC, Paseo Manuel de Lardizabal 5, E-20018 San Sebastián, Spain.
Departamento de Polímeros y Materiales Avanzados, Física, Química y Tecnología (UPV/EHU), Apartado 1072, E-20080 San Sebastián, Spain.
Polymers (Basel). 2020 Dec 21;12(12):3067. doi: 10.3390/polym12123067.
Combining neutron scattering and fully atomistic molecular dynamics simulations allows unraveling structural and dynamical features of polymer melts at different length scales, mainly in the intermolecular and monomeric range. Here we present the methodology developed by us and the results of its application during the last years in a variety of polymers. This methodology is based on two pillars: (i) both techniques cover approximately the same length and time scales and (ii) the classical van Hove formalism allows easily calculating the magnitudes measured by neutron scattering from the simulated atomic trajectories. By direct comparison with experimental results, the simulated cell is validated. Thereafter, the information of the simulations can be exploited, calculating magnitudes that are experimentally inaccessible or extending the parameters range beyond the experimental capabilities. We show how detailed microscopic insight on structural features and dynamical processes of various kinds has been gained in polymeric systems with different degrees of complexity, and how intriguing questions as the collective behavior at intermediate length scales have been faced.
将中子散射与全原子分子动力学模拟相结合,能够揭示聚合物熔体在不同长度尺度下的结构和动力学特征,主要是在分子间和单体范围内。在此,我们展示我们所开发的方法及其在过去几年中在各种聚合物中的应用结果。该方法基于两个支柱:(i)这两种技术覆盖大致相同的长度和时间尺度;(ii)经典的范霍夫形式主义允许从模拟的原子轨迹轻松计算中子散射测量的量值。通过与实验结果直接比较,对模拟单元进行验证。此后,可以利用模拟信息,计算实验上无法获取的量值,或将参数范围扩展到超出实验能力的范围。我们展示了如何在具有不同复杂程度的聚合物体系中获得对各种结构特征和动力学过程的详细微观洞察,以及如何面对诸如中间长度尺度下的集体行为等有趣问题。