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IMCs Microstructure Evolution Dependence of Mechanical Properties for Ni/Sn/Ni Micro Solder-Joints

机译:IMCS微观结构演化依赖力学性能对Ni / Sn / Ni微焊点的依赖性

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摘要

The current miniaturization trend of microelectronic devices drives the size of solder joints to continually scale down. The miniaturized joints considerably increase intermetallic compounds (IMCs) volume fraction to trigger mechanical reliability issues. This study investigated precise relationships between varying IMC volumes and mechanical properties of Ni/Sn(20μm)/Ni micro-joints. A designed method that followed the IMC volume as the only variable was used to prepare micro-joint samples with different IMC volumes. The continuously thickened Ni 3 Sn 4 IMCs exhibited a noticeable morphology evolution from rod-like to chunky shape. The subsequent tensile tests showed unexpected tensile strength responses as increasing Ni 3 Sn 4 volume, which was strongly associated with the Ni 3 Sn 4 morphological evolutions. Fractographic analysis displayed that the ductile fracture dominates the 20%–40% IMC micro-joints, whereas the brittle fracture governs the 40%–80% IMC micro-joints. For the ductile fracture-dominated joints, an abnormal reduction in strength occurred as increasing IMCs volume from 20% to 40%. This is primarily due to severe stress concentrations caused by the transformed long rod-typed morphology of the Ni 3 Sn 4 . For the brittle fracture-dominated joints, the strength appeared a monotonous increase as the Ni 3 Sn 4 volume increased. This may be attributed to the increased crack resistance resulting from continuous coarsening of the chunky Ni 3 Sn 4 without any voids. Moreover, the finite element analysis was provided to further understand the joint failure mechanisms.
机译:微电子器件的电流小型化趋势驱动焊点的尺寸,连续缩小。小型化关节显着增加金属间化合物(IMC)体积分数以引发机械可靠性问题。该研究研究了Ni / Sn(20μM)/ Ni微关节的不同IMC体积和机械性能之间的精确关系。作为唯一变量的遵循IMC卷的设计方法用于准备具有不同IMC卷的微关节样本。连续增厚的Ni 3S4 IMC从棒状到粗斑块表现出明显的形态学。随后的拉伸试验显示出意想不到的拉伸强度应答,因为增加Ni 3 Sn 4体积,这与Ni 3 Sn 4形态演进强烈相关。 Fretography分析显示,延性骨折主导20%-40%的IMC微关节,而脆性骨折治理40%-80%的IMC微关节。对于延性骨折主导的关节,强度的异常降低发生,因为增加IMCS体积从20%至40%。这主要是由于Ni 3 Sn 4的转化长杆类型形态引起的严重应激浓度。对于脆性骨折主导的关节,强度出现了单调的增加,因为Ni 3 Sn 4体积增加。这可能归因于由于连续粗化而没有任何空隙,这可能归因于由于连续粗化而导致的抗裂性。此外,提供了有限元分析以进一步了解接头失效机制。

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