DocumentCode :
66598
Title :
A Fully-Integrated High-Compliance Voltage SoC for Epi-Retinal and Neural Prostheses
Author :
Yi-Kai Lo ; Kuanfu Chen ; Gad, Parag ; Wentai Liu
Author_Institution :
Univ. of California, Los Angeles, Los Angeles, CA, USA
Volume :
7
Issue :
6
fYear :
2013
fDate :
Dec. 2013
Firstpage :
761
Lastpage :
772
Abstract :
This paper presents a fully functionally integrated 1024-channel mixed-mode and mixed-voltage system-on-a-chip (SoC) for epi-retinal and neural prostheses. Taking an AC input, an integrated power telemetry circuits is capable of generating multiple DC voltages with a voltage conversion efficiency of 83% at a load of 100 mW without external diodes or separate power integrated circuits, reducing the form factor of the prosthetic device. A wireless DPSK receiver with a novel noise reduction scheme supports a data rate of 2 Mb/s at a bit-error-rate of 2 × 10-7. The 1024-channel stimulator array meets an output compliance voltage of ±10 V and provides flexible stimulation waveforms. Through chip-clustering, the stimulator array can be further expanded to 4096 channels. This SoC is designed and fabricated in TSMC 0.18 μm high-voltage 32 V CMOS process and occupies a chip area of 5.7 mm × 6.6 mm. Using this SoC, a retinal implant bench-top test system is set up with real-time visual verification. In-vitro experiment conducted in artificial vitreous humor is designed and set-up to investigate stimulation waveforms for better visual resolution. In our in-vivo experiment, a hind-limb paralyzed rat with spinal cord transection and implanted chronic epidural electrodes has been shown to regain stepping and standing abilities using stimulus provided by the SoC.
Keywords :
CMOS integrated circuits; biomedical electrodes; biomedical electronics; biomedical telemetry; differential phase shift keying; eye; medical disorders; medical signal processing; neuromuscular stimulation; patient rehabilitation; power integrated circuits; prosthetics; system-on-chip; waveform analysis; 1024-channel stimulator array; 4096 channels; AC input; TSMC high-voltage CMOS process; artificial vitreous humor; bit rate 2 Mbit/s; bit-error-rate; chip area; chip-clustering; data rate; epi-retinal prostheses; external diodes; flexible stimulation waveforms; form factor; fully functionally integrated 1024-channel mixed-mode; fully-integrated high-compliance voltage SoC; hind-limb paralyzed rat; implanted chronic epidural electrodes; integrated power telemetry circuits; mixed-voltage system-on-a-chip; multiple DC voltages; neural prostheses; noise reduction scheme; output compliance voltage; power 100 mW; power integrated circuits; prosthetic device; real-time visual verification; retinal implant bench-top test system; size 0.18 mum; size 5.7 mm; size 6.6 mm; spinal cord transection; standing abilities; stepping abilities; visual resolution; voltage 32 V; voltage conversion efficiency; wireless DPSK receiver; Differential phase shift keying; Neural prosthesis; Prosthetics; Retina; System-on-chip; Telemetry; Voltage control; Epidural electrode; functional electrical stimulation (FES); implant; inductive link; microelectronics; neuromodulation; neuroprosthesis; paralysis; rectifier; retinal prostheses; spinal cord transection; system-on-a-chip (SoC); telemetry;
fLanguage :
English
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1932-4545
Type :
jour
DOI :
10.1109/TBCAS.2013.2297695
Filename :
6716090
Link To Document :
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