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Length controlled kinetics of self-assembly of bidisperse nanotubes/nanorods in polymers

机译:聚合物中双向纳米管/纳米棒的自组装的长度控制动力学

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摘要

While there is a growing body of work that supports the self-assemblies of nanotubes and nanorods, little attention has been devoted to understand the relation between their length and the kinetics of self assembly in polymer composites. Using dissipative particle dynamics (DPD) method, we simulated the temporal developments of equilibrium microstructures of nanotube dispersions with a bimodal length distribution in polymer matrix. The nanotube/polymer models were developed with different sets of interactions between the components. The equilibrium morphologies obtained for nanotubes are in good agreement with those proposed by previous experimental and theoretical studies. We found that long nanotubes could self-assemble into ordered honeycomb-like bundles as validated with the structure factor calculations. The self-assembly kinetics was quantitatively estimated at different stages and length scales using the variations in the pair-correlation functions. It was observed that the kinetics slowed down particularly in the initial stages of the self-assembly. This was mainly ascribed to the spatial interferences of bidisperse nanotubes as evidenced by laser scanning microscopy and simulated mean squared-displacements (MSD). Furthermore, the developed microstructures were assessed in terms of the effective nanotube volume derived from Monte Carlo (MC) calculations and the frequency of nanotube-nanotube contacts. The simulations reported herein contribute to a microscopic interpretation of the literature results, and the findings of this paper contribute meaningfully to the design strategies aimed at achieving novel nanocomposites with optimal physical properties. (C) 2017 Elsevier Ltd. All rights reserved.
机译:虽然存在一种不断增长的工作体,用于支持纳米管和纳米棒的自我组浆,但很少致力于了解其在聚合物复合材料中的自组装的长度和动力学之间的关系。采用耗散粒子动力学(DPD)方法,我们模拟了在聚合物基质中具有双峰长度分布的纳米管分散体的平衡微观结构的时间发展。纳米管/聚合物模型是用组分之间的不同相互作用的。为纳米管获得的平衡形态与先前实验和理论研究提出的那些吻合吻合良好。我们发现长纳米管可以自组装成有序的蜂窝状捆绑包,如用结构因子计算验证。使用对相关函数的变化定量地估计自组装动力学和长度尺度。观察到动力学尤其在自组装的初始阶段减慢。这主要是由激光扫描显微镜和模拟平均平方 - 位移(MSD)所证明的Bidisperse纳米管的空间干扰。此外,就源自蒙特卡罗(MC)计算的有效纳米管体积和纳米管纳米管接触的频率来评估显影的微观结构。本文报告的模拟有助于对文献结果的显微解释,本文的研究结果有意义地贡献了旨在实现具有最佳物理性质的新型纳米复合材料的设计策略。 (c)2017 Elsevier Ltd.保留所有权利。

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