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设计具有半互穿或互穿网络结构的聚合物纳米复合材料:迈向增强的机械性能。

Designing polymer nanocomposites with a semi-interpenetrating or interpenetrating network structure: toward enhanced mechanical properties.

作者信息

Wang Wenhui, Hou Guanyi, Zheng Zijian, Wang Lu, Liu Jun, Wu Youping, Zhang Liqun, Lyulin Alexey V

机构信息

Key Laboratory of Beijing City on Preparation and Processing of Novel Polymer Materials, Beijing University of Chemical Technology, People's Republic of China.

出版信息

Phys Chem Chem Phys. 2017 Jun 21;19(24):15808-15820. doi: 10.1039/c7cp01453h.

Abstract

Using short polymer chains and through molecular dynamics simulation, we designed a well-dispersed nanoparticle (NP) network, which was then incorporated with the polymer matrix. First, we examined the effects of the dual-end grafted chains flexibility and density on the spatial distribution of this particular polymer nanocomposites system. By changing the interaction strength between the matrix polymer chains and the dual-end grafted chains in the semi-interpenetrating network system (NP network), we analyzed the interpenetration state between the linear polymer matrix and the NP network via calculating the total interfacial interaction energy. Moreover, the uniaxial tensile stress-strain and orientation behavior influenced by the interaction strength between the matrix polymer and the grafted chains were investigated for both the semi-interpenetrating network system and the interpenetrating network system (NP network and matrix network). Furthermore, for the interpenetrating network system, we modulated the integrity of the NP network ranging from 0% to 100%, corresponding to the gradual transition of the dispersion morphology of the NPs from the aggregation state to the uniform dispersion state, to examine the effect of the NP network on the tensile mechanical behavior. In particular, by simulating the dynamic shear process in the semi-interpenetrating network system, the composites were found to exhibit a lower non-linear behavior (the famous Payne effect), a higher storage modulus, and a lower tangent loss at large strain amplitude with increasing NP network integrity. In general, our results could provide a new approach for the design of high-performance polymer nanocomposites by taking advantage of the semi-interpenetrating or interpenetrating network reinforcing structure.

摘要

我们使用短聚合物链并通过分子动力学模拟设计了一种分散良好的纳米颗粒(NP)网络,然后将其与聚合物基体结合。首先,我们研究了双端接枝链的柔韧性和密度对这种特定聚合物纳米复合材料体系空间分布的影响。通过改变半互穿网络体系(NP网络)中基体聚合物链与双端接枝链之间的相互作用强度,我们通过计算总界面相互作用能来分析线性聚合物基体与NP网络之间的互穿状态。此外,还研究了半互穿网络体系和互穿网络体系(NP网络和基体网络)中,基体聚合物与接枝链之间的相互作用强度对单轴拉伸应力-应变和取向行为的影响。此外,对于互穿网络体系,我们将NP网络的完整性从0%调节到100%,这对应于纳米颗粒的分散形态从聚集态到均匀分散态的逐渐转变,以研究NP网络对拉伸力学行为的影响。特别地,通过模拟半互穿网络体系中的动态剪切过程,发现随着NP网络完整性的增加,复合材料在大应变幅值下表现出较低的非线性行为(著名的佩恩效应)、较高的储能模量和较低的损耗角正切。总的来说,我们的结果可以为利用半互穿或互穿网络增强结构设计高性能聚合物纳米复合材料提供一种新方法。

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