Title :
A 10.8 mW Body Channel Communication/MICS Dual-Band Transceiver for a Unified Body Sensor Network Controller
Author :
Cho, Namjun ; Bae, Joonsung ; Yoo, Hoi-Jun
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Korea Adv. Inst. of Sci. & Technol. (KAIST), Daejeon, South Korea
Abstract :
An energy-efficient dual-band transceiver for unified body sensor network is presented. The transceiver provides 30-70 MHz body channel communication (BCC) and 402-405 MHz medical implant communication service (MICS). For low energy consumption, the BCC and MICS band circuits in the receiver operate concurrently with their front-ends shared. As a result, up to 30% energy saving is achieved. The dual-band front-end circuits consist of a cascaded LC tank LNA and a current-recycling concurrent-down conversion mixer. The proposed LNA provides > 16 dB gains both in the BCC and MICS bands and suppresses interferences coupled through the human body by more than 10 dB. For BCC robustness, a variable adaptive frequency hopping is applied. The transceiver fabricated with 0.18 ¿m CMOS is fully compatible with the FCC regulations for MICS and consumes 10.8 mW and 4.9 mW in its RX and TX modes, respectively. The adjacent channel rejections are measured at > 30 dB in the dual-bands.
Keywords :
CMOS integrated circuits; body sensor networks; low noise amplifiers; mixers (circuits); prosthetics; transceivers; wireless channels; CMOS; LC tank; LNA; adjacent channel rejections; body channel communication; current-recycling concurrent-down conversion mixer; dual-band front-end circuits; dual-band transceiver; frequency 30 MHz to 70 MHz; frequency 402 MHz to 405 MHz; medical implant communication service; power 10.8 mW; power 4.9 mW; size 0.18 mum; unified body sensor network controller; variable adaptive frequency hopping; Body sensor networks; Communication system control; Dual band; Energy consumption; Energy efficiency; Gain; Implants; Microwave integrated circuits; Mixers; Transceivers; Body channel communication; concurrent operation; dual-band transceiver; medical implant communication service (MICS); unified body sensor network;
Journal_Title :
Solid-State Circuits, IEEE Journal of
DOI :
10.1109/JSSC.2009.2032592