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Electromechanical characterization of individual micron-sized metal coated polymer particles

机译:单个微米级金属涂覆的聚合物颗粒的机电表征

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摘要

Micron-sized polymer particles with nanoscale metal coatings are essential in conductive adhesives for electronics assembly. The particles function in a compressed state in the adhesives. The link between mechanical properties and electrical conductivity is thus of the utmost importance in the formation of good electrical contact. A custom flat punch set-up based on nanoindentation has been developed to simultaneously deform and electrically probe individual particles. The set-up has a sufficiently low internal resistance to allow the measurement of sub-Ohm contact resistances. Additionally, the set-up can capture mechanical failure of the particles. Combining this data yields a fundamental understanding of contact behavior. We demonstrate that this method can clearly distinguish between particles of different sizes, with different thicknesses of metal coating, and different metallization schemes. The technique provides good repeatability and physical insight into the behavior of these particles that can guide adhesive design and the optimization of bonding processes.
机译:具有纳米级金属涂层的微米级聚合物颗粒在电子组装的导电胶中至关重要。颗粒在粘合剂中以压缩状态起作用。因此,机械性能和电导率之间的联系对于形成良好的电接触至关重要。基于纳米压痕的定制平冲头装置已经开发出来,可以同时变形和电探测单个颗粒。该装置具有足够低的内部电阻,以允许测量低于欧姆的接触电阻。另外,该装置可以捕获颗粒的机械故障。组合这些数据可以对接触行为有一个基本的了解。我们证明了这种方法可以清楚地区分不同大小,金属涂层厚度和金属化方案不同的颗粒。该技术为这些颗粒的行为提供了良好的可重复性和物理洞察力,可以指导粘合剂设计和优化粘合工艺。

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