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首页> 外文期刊>Journal of molecular graphics & modelling >Interfacial properties of 3D metallic carbon nanostructures (T6 and T14)-reinforced polymer nanocomposites: A molecular dynamics study
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Interfacial properties of 3D metallic carbon nanostructures (T6 and T14)-reinforced polymer nanocomposites: A molecular dynamics study

机译:3D金属碳纳米结构的界面性能(T6和T14) - 裂解聚合物纳米复合材料:分子动力学研究

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摘要

Herein, the interfacial properties of new three-dimensional (3D) configurations of metallic carbon, namely T6 and T14, incorporated to different polymer matrices (T6 and T14@polymers) are studied using molecular dynamics (MD) simulations. The effects of two types of shape models for T6 and T14, i.e. beam- and plate-like models, various square cross-sectional areas for the reinforcements, pull-out velocity and polymer structure on the interaction energy and pull-out force of final system are investigated. The results reveal that the interfacial resistance of the system is improved by imposing a high pull-out velocity to the nanofillers. For each pull-out velocity, the effect of beam-like T6 and T14@polycarbonate (beam-like T6 and T14@PC) on increasing average pull-out force is more remarkable than that of similar models surrounded by polypropylene (PP). The beam- and plate-like structures@polymers possess the lowest and highest interfacial resistance, respectively. As the aspect ratio (length-to-width ratio) of nanofillers changes from the lowest value to the highest one, the average pull-out force decreases. The average pull-out force of plate-like T6@polymers is higher than their plate-like T14 counterparts. Besides, higher absolute values of interaction energy in plate-like T6 and T14@polymers in comparison with others imply that the load-carrying capacity from the surrounding matrix to the plate-like nanofillers is significantly increased. (C) 2019 Elsevier Inc. All rights reserved.
机译:这里,使用分子动力学(MD)模拟研究了金属碳的新三维(3D)配置的新三维(3D)构型的互补性质,即掺入不同的聚合物矩阵(T6和T14 @聚合物)。两种形状模型的T6和T14,即光束和板状模型的影响,各种方形横截面积,用于增强的相互作用能量和拉出力的增强,拉出速度和聚合物结构系统进行了调查。结果表明,通过向纳米填充物施加高拉伸速度来改善系统的界面抗性。对于每个拉出速度,梁状T6和T14 @聚碳酸酯(光束样T6和T14 @ PC)对平均拉出力增加的影响比聚丙烯(PP)包围的类似型号更显着。光束和板状结构分别具有最低和最高的界面抗性。随着纳米填充物的纵横比(长宽比)从最低值变为最高值,平均拉出力减小。板状T6 @聚合物的平均拉出力高于它们的板状T14对应物。此外,与其他人相比,板状T6和T14 @聚合物中的相互作用能量的较高绝对值意味着从周围基质到板状纳米填充物的承载能力显着增加。 (c)2019 Elsevier Inc.保留所有权利。

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