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