Md Hasanuzzaman, Bahareh Ghane Motlagh, Fayçal Mounaïm, Ahmad Hassan, Rabin Raut and Mohamad Sawan
Article (2018)
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Abstract
We present, in this paper, a new multichip system aimed toward building an implantable visual intracortical stimulation device. The objective is to deliver energy-optimum pulse patterns to neural sites with needed compliance voltage across high electrode–tissue interface impedance of implantable microelectrodes. The first chip is an energy-efficient stimuli generator (SG), and the second one is a high-impedance microelectrode array driver (MED) output stage. The fourchannel SG produces rectangular, half-sine, plateau-sine, and other types of current pulse with stimulation current ranging from 2.32 to 220 μA per channel. The microelectrode array driver is able to deliver 20 V per anodic or cathodic phase across the microelectrode–tissue interface for ±13 V power supplies. The MED supplies different current levels with the maximum value of 400 μA per input and 100 μA per output channel simultaneously to 8–16 stimulation sites through microelectrodes, connected either in bipolar or monopolar configuration. Both chips receive power via inductive link and data through capacitive coupling. The SG and MED chips have been fabricated in 0.13-μm CMOS and 0.8-μm 5-/20-V CMOS/double-diffused metal-oxidesemiconductor technologies. The measured dc power budgets consumed by low- and mid-voltage chips are 2.56 and 2.1 mW consecutively. The system, modular in architecture, is interfaced with a newly developed platinum-coated pyramidal microelectrode array. In vitro test results with 0.9% phosphate buffer saline show the microelectrode impedance of 70 Ωk at 1 kHz.
Uncontrolled Keywords
Energy-efficient stimuli-generator (SG); highimpedance microelectrode driver; high-voltage compliance; implantable biomedical device; intracortical microstimulation; microelectrode array (MEA); visual prosthesis
Subjects: | 2500 Electrical and electronic engineering > 2500 Electrical and electronic engineering |
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Department: | Department of Electrical Engineering |
Research Center: | GR2M - Microelectronics and Microsystems Research Group |
Funders: | CRSNG/NSERC, Fonds de la recherche québécois sur la nature et les technologies |
PolyPublie URL: | https://publications.polymtl.ca/39718/ |
Journal Title: | IEEE Transactions on Very Large Scale Integration (VLSI) Systems (vol. 26, no. 5) |
Publisher: | IEEE |
DOI: | 10.1109/tvlsi.2018.2794445 |
Official URL: | https://doi.org/10.1109/tvlsi.2018.2794445 |
Date Deposited: | 18 Apr 2023 15:03 |
Last Modified: | 29 Sep 2024 13:38 |
Cite in APA 7: | Hasanuzzaman, M., Motlagh, B. G., Mounaïm, F., Hassan, A., Raut, R., & Sawan, M. (2018). Toward an energy-efficient high-voltage compliant visual intracortical multichannel stimulator. IEEE Transactions on Very Large Scale Integration (VLSI) Systems, 26(5), 878-891. https://doi.org/10.1109/tvlsi.2018.2794445 |
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