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Conductivity Model for Metal-coated Polymer Particles used in Anisotropically Conductive Adhesives

机译:各向异性导电粘合剂中使用的金属涂覆聚合物颗粒的电导率模型

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The increasing demand for fine pitch interconnections has growth the interest for anisotropically conductive adhesives as an alternative for solder joints in high density applications. The understanding of the conduction mechanisms behind anisotropically conductive adhesives (ACA) has a vital importance when choosing the right adhesive for the application. In the conductivity model, a formula has been created that can be used to estimate how the degree of deformation of the particles effects to the resistance. This model can be used especially in the case of soft metal-coated polymer particles. Comparisons between soft metal-coated polymer particles and hard metal particles have been made. Since particle resistance is only a part of the total contact resistance, the model must also take into account the interface resistances between the different materials. With this model it is possible to calculate an estimate of the total contact resistance. Some comparisons to the real measurements was done with gold and ITO surfaces, using gold-coated polymer particles and gold bumped chips. For gold surfaces, the measurements showed a good correlation to the model. In the case of the ITO surface, the interface resistances seems to be the major part of the total resistance.
机译:对细间距互连的不断增加的需求使各向异性导电粘合剂的利益具有高密度应用中的焊点的替代品。在为应用选择合适的粘合剂时,对各向异性导电粘合剂背后的传导机制(ACA)的理解具有至关重要的重要性。在电导率模型中,已经创建了一种公式,其可用于估计粒子对电阻的变形程度的变形程度。该模型可以特别用于软金属涂覆的聚合物颗粒的情况下。已经制备了软金属涂覆的聚合物颗粒和硬金属颗粒之间的比较。由于颗粒阻力仅是总接触电阻的一部分,因此该模型还必须考虑到不同材料之间的界面电阻。通过该模型,可以计算总接触电阻的估计。使用金涂层的聚合物颗粒和金凸屑芯片使用金和ITO表面进行了一些比较。对于金表面,测量结果显示与模型的良好相关性。在ITO表面的情况下,界面电阻似乎是总电阻的主要部分。

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