• DocumentCode
    1348674
  • Title

    Exponential Current Pulse Generation for Efficient Very High-Impedance Multisite Stimulation

  • Author

    Ethier, S. ; Sawan, M.

  • Author_Institution
    Dept. of Electr. Eng., Ecole Polytech., Montréal, QC, Canada
  • Volume
    5
  • Issue
    1
  • fYear
    2011
  • Firstpage
    30
  • Lastpage
    38
  • Abstract
    We describe in this paper an intracortical current-pulse generator for high-impedance microstimulation. This dual-chip system features a stimuli generator and a high-voltage electrode driver. The stimuli generator produces flexible rising exponential pulses in addition to standard rectangular stimuli. This novel stimulation waveform is expected to provide superior energy efficiency for action potential triggering while releasing less toxic reduced ions in the cortical tissues. The proposed fully integrated electrode driver is used as the output stage where high-voltage supplies are generated on-chip to significantly increase the voltage compliance for stimulation through high-impedance electrode-tissue interfaces. The stimuli generator has been implemented in 0.18-μm CMOS technology while a 0.8-μm CMOS/DMOS process has been used to integrate the high-voltage output stage. Experimental results show that the rectangular pulses cover a range of 1.6 to 167.2 μA with a DNL and an INL of 0.098 and 0.163 least-significant bit, respectively. The maximal dynamic range of the generated exponential reaches 34.36 dB at full scale within an error of ± 0.5 dB while all of its parameters (amplitude, duration, and time constant) are independently programmable over wide ranges. This chip consumes a maximum of 88.3 μ W in the exponential mode. High-voltage supplies of 8.95 and -8.46 V are generated by the output stage, boosting the voltage swing up to 13.6 V for a load as high as 100 kΩ.
  • Keywords
    MOS integrated circuits; bioelectric potentials; neuromuscular stimulation; prosthetics; pulse generators; CMOS technology; CMOS-DMOS process; action potential triggering; cortical tissue; current 1.6 muA to 167.2 muA; dual chip system; efficient very high impedance multisite stimulation; exponential current pulse generation; flexible rising exponential pulses; gain 34.36 dB; high impedance electrode-tissue interfaces; high impedance microstimulation; high voltage electrode driver; integrated electrode driver; intracortical current pulse generator; output stage; power 88.3 muW; rectangular stimuli; stimulation voltage compliance; stimulation waveform; stimuli generator; voltage 8.46 V; voltage 8.95 V; CMOS integrated circuits; Charge pumps; Driver circuits; Electrodes; Generators; Impedance; Pulse generation; Charge pump; cortical stimulation; electrode-tissue interface; energy efficient; exponential; implantable device; pulse waveform; visual prosthesis; voltage compliance;
  • fLanguage
    English
  • Journal_Title
    Biomedical Circuits and Systems, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1932-4545
  • Type

    jour

  • DOI
    10.1109/TBCAS.2010.2073707
  • Filename
    5599885