• DocumentCode
    1019002
  • Title

    Effects of Heating Rate on Material Properties of Anisotropic Conductive Film (ACF) and Thermal Cycling Reliability of ACF Flip Chip Assembly

  • Author

    Jang, Kyung-Woon ; Paik, Kyung-Wook

  • Author_Institution
    Mechatron. & Manuf. Technol. Center, Samsung Electron. Co., Ltd., Suwon, South Korea
  • Volume
    32
  • Issue
    2
  • fYear
    2009
  • fDate
    6/1/2009 12:00:00 AM
  • Firstpage
    339
  • Lastpage
    346
  • Abstract
    In this paper, the effects of heating rate during anisotropic conductive film (ACF) curing processes on ACF material properties such as thermomechanical and rheological properties were investigated. It was found that as the heating rate increased, the coefficient of thermal expansion (CTE) of the ACF increased, and the storage modulus and glass transition temperature (T g) of the ACF decreased. Variation of the ACF material properties are attributed to cross-linking density, which is thought to be related with the ACF density. In addition, as the heating rate increased, the minimum viscosity of the ACF decreased and the curing onset temperature increased during the curing process. The similar phenomenon was also found in in-situ contact resistance measurement. As the heating rate increased, contact resistance establishing temperature increased and the contact resistances of the ACF flip chip assemblies decreased. The decrease in contact resistance was due to larger conductive particle deformation which leads to larger electrical contact area. The effect of the heating rate of ACFs on thermal cycling (T/C) reliability of flip chip assemblies was also investigated. As the heating rate increased, the contact resistances of the ACF flip chip assembly rapidly increased during the T/C test. The T/C reliability test result was analyzed by two terms of shear strain and conductive particle deformation. Reduced gap of joints due to reduced ACF viscosity resulted in larger shear strain. Moreover, many cracks were observed at metal-coated layers of conductive particles due to larger deformation.
  • Keywords
    assembling; contact resistance; cracks; curing; elastic moduli; flip-chip devices; glass transition; reliability; rheology; thermal expansion; thermomechanical treatment; viscosity; anisotropic conductive film; coefficient of thermal expansion; conductive particle deformation; contact resistance measurement; cracks; cross-linking density; curing; flip chip assembly; glass transition temperature; heating rate; rheological properties; shear strain; storage modulus; thermal cycling reliability; thermomechanical properties; viscosity; Anisotropic conductive film (ACF); conductive particle deformation; cross-linking density; heating rate; rheological property; thermal cycling reliability; thermomechanical property;
  • fLanguage
    English
  • Journal_Title
    Components and Packaging Technologies, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1521-3331
  • Type

    jour

  • DOI
    10.1109/TCAPT.2008.2001701
  • Filename
    4695959