• DocumentCode
    110079
  • Title

    0.56 V, –20 dBm RF-Powered, Multi-Node Wireless Body Area Network System-on-a-Chip With Harvesting-Efficiency Tracking Loop

  • Author

    Lingli Xia ; Jiao Cheng ; Glover, Neil E. ; Chiang, Patrick

  • Author_Institution
    Oregon State Univ., Corvallis, OR, USA
  • Volume
    49
  • Issue
    6
  • fYear
    2014
  • fDate
    Jun-14
  • Firstpage
    1345
  • Lastpage
    1355
  • Abstract
    A battery-less, multi-node wireless body area network (WBAN) system-on-a-chip (SoC) is demonstrated. An efficiency tracking loop is proposed that adjusts the rectifier´s threshold voltage to maximize the wireless harvesting operation, resulting in a minimum RF sensitivity better than -20 dBm at 904.5 MHz. Each SoC node is injection-locked and time-synchronized with the broadcasted RF basestation power (up to a sensitivity of -33 dBm) using an injection-locked frequency divider (ILFD). Hence, every sensor node is phase-locked with the basestation and all nodes can wirelessly transmit TDMA sensor data concurrently. Designed in a 65 nm-CMOS process, the fabricated sensor SoC contains the energy harvesting rectifier and bandgap, duty-cycled ADC, digital logic, as well as the multi-node wireless clock synchronization and MICS-band transmitter. For a broadcasted basestation power of 20 dBm (30 dBm), experimental measurements verify correct powering, sensor reading, and wireless data transfer for a distance of 3 m (9 m). The entire biomedical system application is verified by reception of room and abdominal temperature monitoring.
  • Keywords
    CMOS integrated circuits; UHF integrated circuits; biomedical electronics; body area networks; energy harvesting; frequency dividers; system-on-chip; telecommunication power supplies; time division multiple access; CMOS process; ILFD; MICS-band transmitter; RF-powered multinode wireless body area network system-on-a-chip; TDMA sensor data; WBAN SoC; abdominal temperature monitoring; bandgap; biomedical system; broadcasted RF basestation power; digital logic; distance 3 m; distance 9 m; duty-cycled ADC; energy harvesting rectifier; frequency 904.5 MHz; harvesting-efficiency tracking loop; injection-locked SoC node; injection-locked frequency divider; multinode wireless clock synchronization; rectifier threshold voltage; size 65 nm; time-synchronized SoC node; voltage 0.56 V; wireless harvesting operation; Energy harvesting; Radio frequency; Synchronization; System-on-chip; Transistors; Wireless communication; Wireless sensor networks; Clock synchronization; RF energy harvesting; efficiency tracking; injection-locking; multi-node;
  • fLanguage
    English
  • Journal_Title
    Solid-State Circuits, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9200
  • Type

    jour

  • DOI
    10.1109/JSSC.2014.2305074
  • Filename
    6746186