• DocumentCode
    2018203
  • Title

    Morphological evolution and migration behavior of the microvoid in Sn/Cu interconnects under electrical field studied by phase-field simulation

  • Author

    Liang, Shui-bao ; Ke, Chang-Bo ; Zhou, Min-Bo ; Zhang, Xin-Ping

  • Author_Institution
    Lab of Smart Materials and Electronic Packaging (SMEP), School of Materials Science and Engineering, South China University of Technology, Guangzhou 510640, China
  • fYear
    2015
  • fDate
    11-14 Aug. 2015
  • Firstpage
    260
  • Lastpage
    265
  • Abstract
    Microvoids usually form at the interface between the Sn-based solder and Cu substrate during aging process. The existence and growth (electromigration and coalescence) of the microvoids can decrease the reliability of solder joints, in particular for the joints undergoing electrical current stressing of high density. In this paper, a diffuse interface model is employed to simulate the morphological evolution and migration behavior of microvoids in the solder interconnect consisting of the Sn-based solder and Cu substrate (i.e., Sn/Cu system), under electrical fields. Simulations take into account the coupled effect of surface diffusion and electrical field. The order parameter equation and electrical field equation are solved by using the finite difference method. The validity of this method is confirmed by the agreement of the evolution of noncircular microvoids driven by surface energy with that predicted theoretically. Simulation results show that the electrical field has significant influence on the morphological evolution of microvoids. The circular microvoids migrate from the region with high electric potential to the region with low potential under electrical field. Moreover, the migration velocity of the microvoid is constant. With increasing the voltage, the migration rate increases and under a high voltage the severe migration of microvoid may lead to a failure of the solder interconnect by the electromigration or coalescence of microvoids.
  • Keywords
    Conductivity; Correlation; Electric potential; Shape; Substrates; electrical field; microvoids; phase field simulation; solder interconnect;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Electronic Packaging Technology (ICEPT), 2015 16th International Conference on
  • Conference_Location
    Changsha, China
  • Type

    conf

  • DOI
    10.1109/ICEPT.2015.7236589
  • Filename
    7236589