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Effect of temperature on elastic properties of CNT-polyethylene nanocomposite and its interface using MD simulations

机译:温度对CNT-聚乙烯纳米复合材料弹性性能及其MD模拟界面的影响

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This paper investigates the effect of temperature on the elastic modulus of carbon nanotube-polyethylene (CNT-PE) nanocomposite and its interface using molecular dynamics (MD) simulations, by utilizing the second-generation polymer consistent force field (PCFF). Two CNTs-armchair and zigzag-were selected as reinforcing nano-fillers, and amorphous PE was used as the polymer matrix. For atomistic modelling of the nanocomposite, the commercially available code Materials Studio 8.0 was used and all other MD simulations were subsequently performed using the open source code Large-Scale Atomic/Molecular Massively Parallel Simulator (LAMMPS). To obtain the elastic modulus of the nanocomposite, stress-strain curves were drawn at different temperatures by performing uniaxial deformation tests on the nanocomposite material, whereas the curvatures of the interfacial interaction energy vs. strain curves were utilized to obtain Young's modulus of the interface. In addition, the glass transition temperatures of the polymer matrix and nanocomposites were also evaluated using density-temperature curves. Based on the results, it is concluded that, irrespective of temperature condition, a nanocomposite reinforced with CNT of larger chirality (i.e., armchair) yields a higher value of Young's modulus of the nanocomposite and its interface. It was also found that, at the phase transition (from a glassy to a rubbery state) temperature (i.e., glass transition temperature), Young's moduli of the polymer matrix, nanocomposite, and its interface drop suddenly. The results obtained from MD simulations were verified with results obtained from continuum-based rule-of-mixtures.
机译:本文通过利用第二代聚合物一致的力场(PCFF)来研究温度对碳纳米管 - 聚乙烯(CNT-PE)纳米复合材料(CNT-PE)纳米复合材料及其界面的影响及其界面的影响。选择两个CNTS-扶手椅和Z字形 - 加强纳米填料,并且使用无定形PE作为聚合物基质。对于纳米复合材料的原子模型,使用市售的代码材料Studio 8.0,随后使用开源代码大规模原子/分子大规模平行模拟器(LAMMP)进行所有其他MD模拟。为了获得纳米复合材料的弹性模量,通过对纳米复合材料进行单轴变形试验,在不同温度下在不同的温度下绘制应力 - 应变曲线,而界面相互作用能量与应变曲线的曲率被利用以获得界面的杨氏模量。此外,还使用密度温度曲线评估聚合物基质和纳米复合材料的玻璃化转变温度。基于该结果,得出结论,不管温度条件如何,用较大的手性(即,扶手椅)加强了纳米复合材料,产生较高的纳米复合材料和其界面的杨氏模量值。还发现,在相转变(从玻璃状到橡胶状状态)温度(即,玻璃化转变温度),杨氏的杨氏模突,纳米复合材料及其界面突然下降。从MD模拟获得的结果得到了从基于连续的基于连续的混合物的结果获得的结果。

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