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Viscoelastic and dynamic properties of polymer grafted nanocomposites with high glass transition temperature graft chains

机译:高玻璃化转变温度接枝链的聚合物接枝纳米复合材料的粘弹性和动态性能

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摘要

The viscoelastic and dynamic properties of dynamically asymmetric polymer-grafted nanocomposites (PGNs) are studied via molecular dynamics simulations. The model PGN is made up of two chains having a large glass transition temperature (T-g) difference, where the grafted chains have the higher Tg. The viscoelastic and dynamic properties were studied at temperatures between the T(g)s of the graft and matrix polymers as a function of the average brush height. Simulation results showed that the static and dynamic properties of the glassy brush played an important role in reinforcing the overall nanocomposite. Although the bare nanofiller containing nanocomposite showed increased shear storage moduli compared to the neat low-T-g polymer, PGNs presented the greatest increases in the shear storage modulus. In addition, the shear storage modulus increased with increasing average brush height, reaching a maximum value at the brush height limit. Analysis of the simulation results revealed that the reinforcement of the shear storage modulus was mainly related to the slowing down of the dynamics of matrix polymer chains. The following mechanisms were identified that were responsible for this effect: (i) High-T-g grafted chains act as obstacles for matrix polymer chains. (ii) With increasing average brush height, grafted and matrix chains form a well-mixed morphology at the nanofiller interface, which leads to further slowing down of the matrix chain dynamics. (iii) Finally, at the brush height limit, grafted chains form a stiff and immobile percolated network, which leads to the observed maximum in the shear storage modulus. Published under license by AIP Publishing.
机译:通过分子动力学模拟研究了动态不对称聚合物接枝纳米复合材料(PGN)的粘弹性和动态性质。型号PGN由具有大玻璃化转变温度(T-G)差的两条链组成,其中接枝链具有更高的Tg。在接枝和基质聚合物的T(g)的温度下研究粘弹性和动态特性,作为平均刷高度的函数。仿真结果表明,玻璃刷的静态和动态特性在加强整体纳米复合材料方面发挥了重要作用。尽管含有纳米复合材料的裸纳米填充物显示出与纯净的低T-G聚合物相比增加的剪切储存量,但是PGN呈现剪切储存模量最大的增加。另外,剪切储存模量随着平均刷高度的增加而增加,达到刷高度限制的最大值。仿真结果的分析表明,剪切储存模量的增强主要与基质聚合物链的动态减慢的速度相关。确定了以下机制,该机制负责这种效果:(i)高T-G接枝链作为基质聚合物链的障碍。 (ii)随着平均刷高度的增加,接枝和基质链在纳米填充界面处形成良好的混合形态,这导致基质链动力学的进一步减慢。 (iii)最后,在刷高度限制,接枝链形成刚性和不动的渗流网络,这导致剪切储存模量中的最大值。通过AIP发布在许可证下发布。

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  • 来源
    《Journal of Applied Physics》 |2019年第19期|195102.1-195102.9|共9页
  • 作者单位

    Rensselaer Polytech Inst Dept Mat Sci & Engn Troy NY 12180 USA;

    Rensselaer Polytech Inst Dept Mat Sci & Engn Troy NY 12180 USA;

    Rensselaer Polytech Inst Dept Mat Sci & Engn Troy NY 12180 USA;

    Stevens Inst Technol Dept Chem Engn & Mat Sci Hoboken NJ 07030 USA;

    Rensselaer Polytech Inst Dept Mat Sci & Engn Troy NY 12180 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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