• DocumentCode
    1493692
  • Title

    Nonhermetic Encapsulation Materials for MEMS-Based Movable Microelectrodes for Long-Term Implantation in the Brain

  • Author

    Jackson, Nathan ; Anand, Sindhu ; Okandan, Murat ; Muthuswamy, Jit

  • Author_Institution
    Harrington Dept. of Bioeng., Arizona State Univ., Tempe, AZ, USA
  • Volume
    18
  • Issue
    6
  • fYear
    2009
  • Firstpage
    1234
  • Lastpage
    1245
  • Abstract
    In this paper, we have fabricated and tested several composite materials with a mesh matrix, which are used as encapsulation materials for a novel implantable movable-microelectrode microelectromechanical-system (MEMS) device. Since movable microelectrodes extend off the edge of the MEMS chip and penetrate the brain, a hermetically sealed encapsulation was not feasible. An encapsulation material is needed to prevent cerebral-spinal-fluid entry that could cause failure of the MEMS device and, at the same time, allow for penetration by the microelectrodes. Testing of potential encapsulation materials included penetration-force measurements, gross-leak testing, maximum-pressure testing, and biocompatibility testing. Penetration-force tests showed that untreated mesh matrices and silicone-gel-mesh composites required the least amount of force to penetrate for both nylon 6,6 and polypropylene meshes. The silicone-gel-, poly(dimethylsiloxane)-, polyimide-, and fluoroacrylate-mesh composites with the nylon-mesh matrix were all able to withstand pressures above the normal intracranial pressures. Fourier-transform infrared-spectroscopy analysis and visual inspection of the implanted devices encapsulated by the silicone-gel-mesh composite showed that there was no fluid or debris entry at two and four weeks postimplantation. We conclude that a composite of nylon and silicone-gel meshes will meet the needs of the new generation of implantable devices that require nonhermetic encapsulation.
  • Keywords
    Fourier transform spectra; bioMEMS; biomedical electrodes; biomedical materials; brain; filled polymers; infrared spectra; microelectrodes; prosthetics; silicones; Fourier transform infrared spectroscopy; MEMS device; biocompatibility testing; brain; fluoroacrylate mesh composites; long term implantation; mesh matrix; movable microelectrodes; nonhermetic encapsulation; nylon 6,6; penetration force test; poly(dimethylsiloxane) mesh composites; polyimide mesh composites; polypropylene; silicone gel mesh composites; visual inspection; Bio-microelectromechanical systems (MEMS); composite; neural implant; neural prostheses; packaging; reliability;
  • fLanguage
    English
  • Journal_Title
    Microelectromechanical Systems, Journal of
  • Publisher
    ieee
  • ISSN
    1057-7157
  • Type

    jour

  • DOI
    10.1109/JMEMS.2009.2030075
  • Filename
    5280304