• DocumentCode
    1455695
  • Title

    Failure mechanisms of pressurized microchannels: model and experiments

  • Author

    Blom, M.T. ; Tas, Niels R. ; Pandraud, Grégory ; Chmela, Emil ; Gardeniers, J.G.E. ; Tijssen, Robert ; Elwenspoek, Miko ; van den Berg, Albert

  • Author_Institution
    MESA Res. Inst., Twente Univ., Enschede, Netherlands
  • Volume
    10
  • Issue
    1
  • fYear
    2001
  • fDate
    3/1/2001 12:00:00 AM
  • Firstpage
    158
  • Lastpage
    164
  • Abstract
    MicrochanneIs were created by fusion bonding of a Pyrex cover to a thermally oxidized silicon wafer, which contained anisotropically etched grooves. Such channels are frequently used in microfluidic handling systems, for example, in chemical analysis. Since in some of these labs-on-a-chip, in particular those used in liquid chromatography, the channels are subjected to high pressures of up to a few hundred bar, it is important to have information about the mechanical stability of the channel chip, in particular of the wafer bond involved in it. The latter is the subject of this paper. The maximum pressure that can be applied to several different channel chips was investigated experimentally. In order to find the relation among this maximum pressure, channel geometry, materials elasticity, and bond energy, an energy model was developed that is generally applicable to all types of wafer bonds. It was shown that the model is substantiated by the experimental pressure data, from which it could be calculated that the effective bond energy increased from 0.018 to 0.19 J/m2 for an annealing temperature ranging from 310 to 470°C
  • Keywords
    annealing; chromatography; etching; mechanical stability; microfluidics; wafer bonding; 310 to 470 degC; Pyrex cover; Si; anisotropically etched grooves; annealing temperature; bond energy; channel geometry; chemical analysis; effective bond energy; energy model; failure mechanisms; fusion bonding; labs-on-a-chip; liquid chromatography; materials elasticity; mechanical stability; microfluidic handling systems; pressurized microchannels; thermally oxidized wafer; Anisotropic magnetoresistance; Chemical analysis; Etching; Failure analysis; Microchannel; Microfluidics; Semiconductor device modeling; Silicon; Stability; Wafer bonding;
  • fLanguage
    English
  • Journal_Title
    Microelectromechanical Systems, Journal of
  • Publisher
    ieee
  • ISSN
    1057-7157
  • Type

    jour

  • DOI
    10.1109/84.911105
  • Filename
    911105