Thermal Misfit and Diffusion Induced Stresses of Cu-Al Intermetallics in Microelectronics Wire Bonding

Sharir Shariza, T. Anand
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引用次数: 0

Abstract

The thermosonic bonding technique is a widely used method for Cu wire interconnections. However, issues arise due to volumetric changes in intermetallic compounds (IMCs) formed at the Cu-Al bonding interface, leading to voids in the Cu-Al IMC layer. This problem is exacerbated after annealing, such as in high-temperature Storage (HTS). In this study, a statistical modelling approach was employed to quantitatively analyse stress, studying the evolution and characteristics of the interfacial microstructure in the thermosonic Cu wire-Al bond pad system. Microstructural analysis focused on Cu-Al IMC crystallography and compositional classification. A stress model was proposed, considering both thermal misfit and diffusion-induced stresses. Results showed that interfacial stress generally increased with higher bonding temperatures. The influence of forming gas supply was relatively minor, with oxide layers minimally impeding Cu-Al interdiffusion during Cu-Al IMC formation. This stress modelling technique hold potential as a valuable failure analysis tool for implementing Cu wire in various industries.
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微电子导线键合中铜铝金属间化合物的热错位和扩散诱导应力
热固性键合技术是一种广泛用于铜线互连的方法。然而,由于铜铝键合界面上形成的金属间化合物(IMC)的体积变化,导致铜铝 IMC 层出现空隙,从而产生了一些问题。退火后,例如在高温存储 (HTS) 中,这一问题会更加严重。本研究采用统计建模方法对应力进行定量分析,研究热声铜线-铝键合垫系统中界面微结构的演变和特征。微观结构分析侧重于铜-铝 IMC 晶体学和成分分类。考虑到热错位和扩散引起的应力,提出了一个应力模型。结果表明,界面应力通常随着粘合温度的升高而增加。成型气体供应的影响相对较小,在铜铝 IMC 形成过程中,氧化层对铜铝相互扩散的阻碍很小。这种应力建模技术可作为一种有价值的失效分析工具,应用于各行各业的铜线。
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