DocumentCode :
262161
Title :
9.7 A 0.33nJ/b IEEE802.15.6/proprietary-MICS/ISM-band transceiver with scalable data-rate from 11kb/s to 4.5Mb/s for medical applications
Author :
Vidojkovic, M. ; XiongChuan Huang ; Xiaoyan Wang ; Cui Zhou ; Ao Ba ; Lont, Maarten ; Yao-Hong Liu ; Harpe, Pieter ; Ming Ding ; Busze, Benjamin ; Kiyani, Nauman ; Kanda, K. ; Masui, Shoichi ; Philips, K. ; de Groot, Harmke
Author_Institution :
Holst Centre/imec, Eindhoven, Netherlands
fYear :
2014
fDate :
9-13 Feb. 2014
Firstpage :
170
Lastpage :
171
Abstract :
The introduction of the IEEE802.15.6 standard (15.6) for wireless-body-area networks signals the advent of new medical applications, where various wireless nodes in, on or around a human body monitor vital signs. Radio communication often dominates the power consumption in the nodes, thus low-power transceivers are desired. Most state-of-the-art low-power transceivers support only proprietary modes with OOK or FSK modulations, and have poor sensitivity or low data rate [1,2]. In this work, a 15.6-compliant transceiver with enhanced performance is proposed. First, the data-rate is extended to 4.5Mb/s to cover multi-channel EEG applications. Second, while a best-in-class energy efficiency of 0.33nJ/b is achieved in the high-speed mode, a dedicated low-power mode reduces the RX power further in low-data-rate operation. Third, a sensitivity 5 to 10dB better than the 15.6 specification is targeted to accommodate extra path loss due to shadowing effects from human bodies.
Keywords :
amplitude shift keying; biomedical electronics; biomedical telemetry; body area networks; electroencephalography; frequency shift keying; low-power electronics; medical signal processing; patient monitoring; personal area networks; power consumption; radio access networks; radio transceivers; sensitivity; 0.33nJ/b IEEE802.15.6-proprietary-MICS-ISM-band transceiver; 15.6-compliant transceiver; FSK modulations; IEEE802.15.6 standard; OOK modulations; RX power; best-in-class energy efficiency; high-speed mode; human body monitor vital signs; low-data-rate operation; low-power mode; medical applications; multichannel EEG applications; power consumption; radio communication; scalable data-rate; sensitivity; state-of-the-art low-power transceivers; wireless nodes; wireless-body-area networks signals; CMOS integrated circuits; Energy efficiency; Frequency modulation; Microwave integrated circuits; Sensitivity; Transceivers; Voltage-controlled oscillators;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Solid-State Circuits Conference Digest of Technical Papers (ISSCC), 2014 IEEE International
Conference_Location :
San Francisco, CA
ISSN :
0193-6530
Print_ISBN :
978-1-4799-0918-6
Type :
conf
DOI :
10.1109/ISSCC.2014.6757386
Filename :
6757386
Link To Document :
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