• DocumentCode
    1361806
  • Title

    Implantable Polyimide Cable for Multichannel High-Data-Rate Neural Recording Microsystems

  • Author

    Sun, Tao ; Park, Woo-Tae ; Cheng, Min-Yuan ; An, Jing-Zhi ; Xue, Rui-Feng ; Tan, Kwan-Ling ; Je, Minkyu

  • Author_Institution
    Inst. of Microelectron., Agency for Sci., Technol. & Res., Singapore, Singapore
  • Volume
    59
  • Issue
    2
  • fYear
    2012
  • Firstpage
    390
  • Lastpage
    399
  • Abstract
    To avoid or minimize postimplantation injury as a result of brain micromotion relative to the skull, a flexible multichannel polyimide (PI) cable was designed and microfabricated for data and power transmission between an intracranial IC recording from a neural probe array and an extracranial IC exchanging power and data wirelessly with an external unit. Surface characteristics, electrical properties, and cytocompatibility of the PI ribbon cable were investigated in this study. Scanning electron microscopic examination and atomic force microscopy analyses showed that the surface of the PI ribbon cable became significantly rougher due to the reactive oxygen ion etching process to open bonding pads. The enhanced surface roughness was also responsible for the increase in wettability and water absorption rate. However, water permeability measurement revealed that the micromachining fabrication process did not meaningfully affect the acceptable water vapor transmission rate of PI. Moreover, electrical properties, such as insertion loss, isolation between channels and data transmission capacity, were assessed for each channel of the PI ribbon cable on the basis of scattering parameter (S-parameter) measurement. Finally, 3-(4, 5-dimethylthiazol-2-yl)-2, 5-diphenyltetrazolium bromide assay and live/dead intracellular staining tests were carried out to evaluate cell behaviors on the PI ribbon cable, indicating that the PI ribbon cable did not have acute cytotoxicity and appeared to be as cytocompatible as blank PI foils.
  • Keywords
    S-parameters; atomic force microscopy; bioMEMS; bioelectric phenomena; cables (electric); cellular biophysics; data communication; micromachining; neurophysiology; permeability; power integrated circuits; prosthetic power supplies; scanning electron microscopy; sputter etching; surface roughness; wetting; 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide assay; S-parameter measurement; atomic force microscopy; cytocompatibility; data transmission capacity; electrical properties; extracranial IC exchanging power; implantable polyimide cable; intracranial IC recording; live-dead intracellular staining test; micromachining fabrication; multichannel high-data-rate neural recording microsystem; open bonding pads; power transmission; reactive oxygen ion etching; scanning electron microscopy; scattering parameter measurement; surface characteristics; surface roughness; water absorption rate; water permeability measurement; water vapor transmission rate; wettability; Materials; Rough surfaces; Surface morphology; Surface roughness; Surface topography; Surface treatment; USA Councils; Biocompatibility; electrical properties; neural prosthesis; polyimide (PI) cable; surface characteristics; Absorption; Cell Line, Tumor; Cell Survival; Equipment Design; Humans; Implants, Experimental; Materials Testing; Neural Prostheses; Resins, Synthetic; Surface Properties; Tetrazolium Salts; Thiazoles; Water;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2011.2173343
  • Filename
    6060897