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Size-dependent mechanical behavior of nanoscale polymer particles through coarse-grained molecular dynamics simulation

机译:通过粗粒分子动力学模拟的纳米级聚合物颗粒的尺寸依赖性力学行为

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摘要

Anisotropic conductive adhesives (ACAs) are promising materials used for producing ultra-thin liquid-crystal displays. Because the mechanical response of polymer particles can have a significant impact in the performance of ACAs, understanding of this apparent size effect is of fundamental importance in the electronics industry. The objective of this research is to use a coarse-grained molecular dynamics model to verify and gain physical insight into the observed size dependence effect in polymer particles. In agreement with experimental studies, the results of this study clearly indicate that there is a strong size effect in spherical polymer particles with diameters approaching the nanometer length scale. The results of the simulations also clearly indicate that the source for the increases in modulus is the increase in relative surface energy for decreasing particle sizes. Finally, the actual contact conditions at the surface of the polymer nanoparticles are shown to be similar to those predicted using Hertz and perfectly plastic contact theory. As ACA thicknesses are reduced in response to reductions in polymer particle size, it is expected that the overall compressive stiffness of the ACA will increase, thus influencing the manufacturing process.
机译:各向异性导电粘合剂(ACA)是用于生产超薄液晶显示器的有前途的材料。由于聚合物颗粒的机械响应可能会对ACA的性能产生重大影响,因此了解这种明显的尺寸效应在电子行业中至关重要。这项研究的目的是使用粗粒度的分子动力学模型来验证并获得对聚合物颗粒中尺寸依赖性效应的物理了解。与实验研究一致,该研究结果清楚地表明,直径接近纳米级的球形聚合物颗粒具有很强的尺寸效应。模拟结果也清楚地表明,模量增加的来源是相对表面能的增加,以减小粒径。最后,聚合物纳米颗粒表面的实际接触条件显示与使用赫兹和完全塑性接触理论预测的条件相似。随着响应于聚合物粒度的减小,ACA厚度减小,预期ACA的整体压缩刚度将增加,从而影响制造工艺。

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