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A Wireless Multi-Channel Peripheral Nerve Signal Acquisition System-on-Chip

Authors :
Xin Yuan Thow
Khay-Wai Leong
Sanghoon Lee
Gil Gerald Lasam Gammad
Yong Ping Xu
Anh Tuan Do
Kian Ann Ng
Astrid Rusly
Wendy Yen Xian Peh
John S. Ho
Shih-Chiang Liu
Annarita Cutrone
Chao Yuan
Shih-Cheng Yen
Bin Zhao
Kai Voges
Gemma Taverni
Silvia Bossi
Ng, K. A.
Yuan, C.
Rusly, A.
Do, A. -T.
Zhao, B.
Liu, S. -C.
Peh, W. Y. X.
Thow, X. Y.
Voges, K.
Lee, S.
Gammad, G. G. L.
Leong, K. -W.
Ho, J. S.
Bossi, S.
Taverni, G.
Cutrone, A.
Yen, S. -C.
Xu, Y. P.
Publication Year :
2019

Abstract

The adoption of chronic implantable peripheral nerve-based prosthetic devices is currently hampered by the lack of a highly integrated neural signal acquisition system-on-chip (SoC). We report a ten-channel peripheral nervous system (PNS) electroneurogram (ENG) signal acquisition SoC within an implantable package. Requiring only four off-chip capacitors, this SoC can be co-encapsulated with flexible nerve electrodes and a resonant coil antenna to form a 3.4 cm3 and 3.9 g implantable device for chronic ENG acquisition. This SoC is inductively powered and controlled through a resonant coil at 22 MHz and transmits the digitized neural signal through a near-infrared LED (NIR-LED). Fabricated in 0.18- $\mu \text{m}$ CMOS, each amplifier channel exhibits an input referred noise of 1.9 $\mu \text{V}_{\mathbf {rms}}$ and a noise efficiency factor (NEF) of 4.0 within the signal bandwidth of 5.5 kHz. Each amplifier channel within the SoC is digitized with 10-bit resolution at 17.5 ksps, and the total power consumption (SoC and NIR-LED) is 4.4 mW when the NIR-LED is driven at 3 Mb/s. An electrode impedance measurement circuit with $\text{M}\Omega $ is also incorporated in this SoC. This wireless, low noise ENG acquisition SoC package has been validated in vivo while implanted on a rodent to acquire ENG from its sciatic nerve.

Details

Language :
English
Database :
OpenAIRE
Accession number :
edsair.doi.dedup.....a7ef305ead6bb05150f5f8f983fe13b9