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Focus on the deformation mechanism at the interfacial layer in nano-reinforced polymers: A molecular dynamics study of silica - poly (methyl methacrylate) nano-composite

机译:纳米增强聚合物中界面层的变形机制:二氧化硅 - 聚(甲基丙烯酸甲酯)纳米复合材料的分子动力学研究

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摘要

The effects of nanoparticle size on the "macroscopic" mechanical response and interfacial interaction in the case of model nano-reinforced polymers were investigated using molecular dynamics simulations. Different ensembles, of homogeneous polymer matrices, amorphous silica particle, and their binary mixtures were prepared. The binary mixture was made with silica nano-particle 3 nm in size, embedded in poly (methyl methacrylate) or PMMA polymeric matrix. At the macroscopic scale, the mechanical response of the matrix and nano-composite was evaluated using simulated tensile tests. Interfacial interaction between the NP and the PMMA matrix was qualitatively evaluated using the thermodynamic analysis of nanocomposite systems. Entropy (S) and internal energy (E) were derived from relatively short molecular dynamics trajectories, using the two-phase thermodynamic method (2-PT). The PMMA matrix was decomposed into concentric layers composed of atoms from different polymer chains but located at an equal distance from the center of mass of the silica NP. For both nanocomposite systems, the interface layer of the polymer closest to the silica NP surface exhibited both the lowest entropy and a well-organized structure. Entropy and internal energy patterns were derived from tensile stretched samples. Entropy and internal energy variation on stretched samples revealed the existence of two distinct domains. The first domain deformation was a mixture of internal energy increase and entropy decrease. In the second domain, the deformation mechanism was mostly governed by variations in entropy. These observations will be discussed about polymer - nanoparticle attractivity.
机译:采用分子动力学模拟研究了纳米颗粒尺寸对模型纳米增强聚合物的“宏观”机械响应和界面相互作用的影响。制备不同的集合,均相聚合物基质,非晶二氧化硅颗粒及其二元混合物。二元混合物用硅纳米颗粒3nm制备,嵌入聚(甲基丙烯酸甲酯)或PMMA聚合物基质中。在宏观尺度下,使用模拟拉伸试验评估基质和纳米复合物的机械响应。利用纳米复合体系的热力学分析,对NP和PMMA矩阵之间的界面相互作用进行了定性评估。熵(S)和内能量(E)使用两相热力学方法(2-PT)来源于相对短的分子动力学轨迹。 PMMA矩阵被分解成由来自不同聚合物链的原子组成的同心层,但位于距离二氧化硅NP的质量中心的相等距离​​。对于纳米复合体系,最接近二氧化硅NP表面的聚合物的界面层表现出最低熵和结构良好的结构。熵和内部能量模式源自拉伸拉伸样品。拉伸样品上的熵和内部能量变化显示出两个不同的结构域的存在。第一域变形是内部能量增加和熵的混合物。在第二个领域中,变形机制主要受熵的变化来控制。将讨论这些观察结果关于聚合物 - 纳米粒子吸引力。

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