• DocumentCode
    1756337
  • Title

    Optimizing Parylene C Adhesion for MEMS Processes: Potassium Hydroxide Wet Etching

  • Author

    Charmet, Jerome ; Bitterli, Joanna ; Sereda, Olha ; Liley, Martha ; Renaud, Pierre ; Keppner, Herbert

  • Author_Institution
    Inst. des Microtechnologies Appl. Arc, La Chaux-de-Fonds, Switzerland
  • Volume
    22
  • Issue
    4
  • fYear
    2013
  • fDate
    Aug. 2013
  • Firstpage
    855
  • Lastpage
    864
  • Abstract
    Parylenes are used for a wide range of applications in microelectromechanical systems (MEMS) devices. However, their poor adhesion in a harsh liquid environment can limit the fabrication processes of complex MEMS and bioMEMS devices. Potassium hydroxide (KOH) wet etching is particularly challenging and was used to evaluate the adhesion of Parylene C on silicon, silicon nitride, and silicon dioxide substrates. Using a number of characterization procedures, this paper shows that the delamination is the result of liquid penetrating both at the Parylene-substrate interface and through the polymer layer. The combination of an adhesion promoter and a thermal treatment improves the adhesion of the layer. The treatment is evaluated in two case studies, where the Parylene is used as: 1) a biocompatible coating, and 2) as a mask to block the entrance of a microfluidics channel. In the first case, it is shown that the treatments, including the KOH exposure, do not influence the growth and proliferation of SaOS-2 cells, as compared to a generic Parylene layer. In the second case, the results show that Parylene can be used efficiently to block the entrance of the channel, and that it can be removed afterward.
  • Keywords
    adhesion; bioMEMS; etching; heat treatment; microfluidics; polymer structure; protective coatings; KOH; KOH wet etching; MEMS process; SiN; SiO2; bioMEMS devices; biocompatible coating; complex MEMS devices; generic parylene layer; harsh liquid environment; microelectromechanical systems; microfluidics channel; parylene C adhesion; parylene-substrate interface; polymer layer; potassium hydroxide; silicon dioxide substrates; silicon nitride; thermal treatment; Adhesives; Delamination; Micromechanical devices; Silicon; Silicon compounds; Substrates; Surface treatment; Biomedical materials; chemical processes; mask; microelectromechanical systems; parylene; polymer films;
  • fLanguage
    English
  • Journal_Title
    Microelectromechanical Systems, Journal of
  • Publisher
    ieee
  • ISSN
    1057-7157
  • Type

    jour

  • DOI
    10.1109/JMEMS.2013.2248126
  • Filename
    6478868