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A 0.5-μ Vrms 12-μ W Wirelessly Powered Patch-Type Healthcare Sensor for Wearable Body Sensor Network

Cited 44 time in Web of Science Cited 50 time in Scopus
Authors

Yan, Long; Yoo, Jerald; Kim, Binhee; Yoo, Hoi-Jun

Issue Date
2010-11
Publisher
Institute of Electrical and Electronics Engineers
Citation
IEEE Journal of Solid-State Circuits, Vol.45 No.11, pp.2356-2365
Abstract
A wirelessly powered patch-type healthcare sensor IC is presented for a wearable body sensor network (W-BSN) to continuously monitor personal vital signals. Thick-film electrodes are screen printed on a fabric by planar-fashionable circuit board (P-FCB) technology on which stainless steel powder with a grain size of 100 mu m is added to reduce both contact impedance as well as motion artifacts. A nested chopped amplifier (NCA) is designed and optimized for the proposed patch-type healthcare sensor with a reduced electrode referred noise of 0.5 mu V-rms. A programmable gain and bandwidth amplifier (PGA) stage is also implemented to accommodate various dynamic ranges of vital signals. A 10-b folded successive approximation register (SAR) analog-to-digital converter (ADC) reduces capacitive digital-to-analog conversion size by 94% and relaxes the power budget of the ADC driver by 36%. Measured sensor resolution is 9.2 b and rejects common-mode interference larger than 100 dB while consuming only 12 mu W of power supplied wirelessly. A 2.0 mm x 1.3 mm sensor IC is fabricated in 0.18-mu m 1P6M CMOS technology. The chip is directly integrated between two screen printed electrodes and stacked by a screen printed fabric inductor. With the proposed patch-type sensor, personal healthcare without expensive batteries is possible in W-BSN and greatly improves wearability and convenience in use.
ISSN
0018-9200
URI
https://hdl.handle.net/10371/200850
DOI
https://doi.org/10.1109/JSSC.2010.2065831
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Yoo, Jerald유담
부교수
  • College of Engineering
  • Department of Electrical and Computer Engineering
Research Area Biomedical Applications, Energy-Efficient Integrated Circuits

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