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  4. Multiscale microstructures and microstructural effects on the reliability of microbumps in three-dimensional integration
 
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2013
Journal Article
Title

Multiscale microstructures and microstructural effects on the reliability of microbumps in three-dimensional integration

Abstract
The dimensions of microbumps in three-dimensional integration reach microscopic scales and thus necessitate a study of the multiscale microstructures in microbumps. Here, we present simulated mesoscale and atomic-scale microstructures of microbumps using phase field and phase field crystal models. Coupled microstructure, mechanical stress, and electromigration modeling was performed to highlight the microstructural effects on the reliability of microbumps. The results suggest that the size and geometry of microbumps can influence both the mesoscale and atomic-scale microstructural formation during solidification. An external stress imposed on the microbump can cause ordered phase growth along the boundaries of the microbump. Mesoscale microstructures formed in the microbumps from solidification, solid state phase separation, and coarsening processes suggest that the microstructures in smaller microbumps are more heterogeneous. Due to the differences in microstructures, the von Mises stress distributions in microbumps of different sizes and geometries vary. In addition, a combined effect resulting from the connectivity of the phase morphology and the amount of interface present in the mesoscale microstructure can influence the electromigration reliability of microbumps.
Author(s)
Huang, Zhiheng
Xiong, Hua
Wu, Zhiyong
Conway, Paul
Altmann, Frank  
Journal
Materials  
Open Access
DOI
10.3390/ma6104707
Additional link
Full text
Language
English
IWM-H  
Keyword(s)
  • 3D integration

  • microbump

  • multiscale microstructure

  • reliability

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