DocumentCode :
68462
Title :
A Fully Intraocular High-Density Self-Calibrating Epiretinal Prosthesis
Author :
Monge, Manuel ; Raj, Milan ; Nazari, Masoud Honarvar ; Han-Chieh Chang ; Yu Zhao ; Weiland, James D. ; Humayun, Mark S. ; Yu-chong Tai ; Emami, Ali
Author_Institution :
Dept. of Electr. Eng., California Inst. of Technol., Pasadena, CA, USA
Volume :
7
Issue :
6
fYear :
2013
fDate :
Dec. 2013
Firstpage :
747
Lastpage :
760
Abstract :
This paper presents a fully intraocular self-calibrating epiretinal prosthesis with 512 independent channels in 65 nm CMOS. A novel digital calibration technique matches the biphasic currents of each channel independently while the calibration circuitry is shared among every 4 channels. Dual-band telemetry for power and data with on-chip rectifier and clock recovery reduces the number of off-chip components. The rectifier utilizes unidirectional switches to prevent reverse conduction loss in the power transistors and achieves an efficiency > 80%. The data telemetry implements a phase-shift keying (PSK) modulation scheme and supports data rates up to 20 Mb/s. The system occupies an area of 4.5 ×3.1 mm2. It features a pixel size of 0.0169 mm2 and arbitrary waveform generation per channel. In vitro measurements performed on a Pt/Ir concentric bipolar electrode in phosphate buffered saline (PBS) are presented. A statistical measurement over 40 channels from 5 different chips shows a current mismatch with μ = 1.12 μA and σ = 0.53 μA. The chip is integrated with flexible MEMS origami coils and parylene substrate to provide a fully intraocular implant.
Keywords :
CMOS integrated circuits; bioMEMS; biomedical electrodes; biomedical electronics; biomedical telemetry; calibration; eye; iridium; lab-on-a-chip; microswitches; neurophysiology; phase shift keying; phosphorus compounds; platinum; power transistors; prosthetics; rectifiers; statistical analysis; waveform generators; CMOS; PSK; Pt-Ir; Pt-Ir concentric bipolar electrode; arbitrary waveform generation; biphasic currents; calibration circuitry; clock recovery; current 0.53 muA; current 1.12 muA; current mismatch; data telemetry; dual-band telemetry; flexible MEMS origami coils; fully intraocular high-density self-calibrating epiretinal prosthesis; fully intraocular implant; in vitro measurements; independent channels; novel digital calibration technique; off-chip components; on-chip rectifier; parylene substrate; phase-shift keying modulation scheme; phosphate buffered saline; pixel size; power transistors; reverse conduction loss; size 65 nm; statistical measurement; unidirectional switches; Biomedical equipment; Calibration; Electrodes; Neural prosthesis; Prosthetics; Retina; Telemetry; Transistors; Biomedical; calibration; data telemetry; epiretinal prosthesis; implantable biomedical devices; neural interfaces; neural prosthesis; neural stimulator; neurostimulator; power telemetry; retinal prosthesis; self-calibrating;
fLanguage :
English
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1932-4545
Type :
jour
DOI :
10.1109/TBCAS.2014.2298334
Filename :
6717052
Link To Document :
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