• DocumentCode
    3608415
  • Title

    A 24,\\mu text{W} , Batteryless, Crystal-free, Multinode Synchronized SoC “Bionode” for Wireless Prosthesis Control

  • Author

    Bhamra, Hansraj ; Young-Joon Kim ; Joseph, Jithin ; Lynch, John ; Gall, Oren Z. ; Mei, Henry ; Meng, Chuizhou ; Jui-Wei Tsai ; Irazoqui, Pedro

  • Author_Institution
    Sch. of Electr. & Comput. Eng., Purdue Univ., West Lafayette, IN, USA
  • Volume
    50
  • Issue
    11
  • fYear
    2015
  • Firstpage
    2714
  • Lastpage
    2727
  • Abstract
    We present a batteryless, crystal-free, time division multiple access (TDMA) synchronized multinode wireless body sensor node (WBSN) system-on-chip (SoC), referred to as a Bionode, for continuous and real-time telemetry of electromyograms (EMGs), enabling intuitive upper limb prosthesis control by an amputee. The SoC utilizes state of the art in supercapacitive RF energy harvesting, biosensing analog-front-end, switchingoptimized SAR ADC, ultra-low-power RF transceiver, and clock circuits. The sensor node SoCs are time synchronized with a base station, mounted on the prosthetic arm, by using the ultra-lowpower TDMA controller and receiver, and the digital core circuits. A 915 MHz broadcast RF signal is utilized to synthesize the carrier frequency of the transmitter. This along with the process and voltage compensated on-chip clock obviates the need for a bulky crystal oscillator, thus providing a low-cost and highly integrated solution to the WBSNs. The SoC is verified by capturing the EMG data from a healthy human body and consumes only 24 μW, while operating exclusively from the harvested RF energy. Implemented in a 0.18 μm CMOS process, the SoC occupies 2.025 mm2 silicon area. The sensor node has an extremely low weight and physical dimensions, thanks to the flexible carbon nanotube (CNT) supercapacitor, electrically small antenna (ESA), and crystal-free operation of the SoC.
  • Keywords
    CMOS integrated circuits; biomedical electronics; biomedical telemetry; biosensors; carbon nanotubes; electromyography; energy harvesting; medical information systems; medical signal processing; prosthetics; supercapacitors; system-on-chip; C; CMOS process; EMG; EMG data; RF signal; WBSN; analog-front-end; batteryless crystal-free multinode synchronized SoC bionode; biosensing; bulky crystal oscillator; clock circuits; continuous telemetry; digital core circuits; electrically small antenna; electromyogram; flexible carbon nanotube supercapacitor; frequency 915 MHz; harvested RF energy; healthy human body; highly integrated solution; intuitive upper limb prosthesis control; power 24 muW; prosthetic arm; real-time telemetry; receiver; sensor node SoC; supercapacitive RF energy harvesting; switching- optimized SAR ADC; system-on-chip; time division multiple access synchronized multinode wireless body sensor node; transmitter; ultralow-power RF transceiver; ultralow-power TDMA controller; voltage compensated on-chip clock; wireless prosthesis control; Antennas; Energy harvesting; Prosthetics; Radio frequency; Synchronization; System-on-chip; Time division multiple access; Batteryless; RF energy harvesting; crystal-free; electromyogram (EMG); multinode access; real-time acquisition; supercapacitor; targeted muscle reinnervation (TMR); time division multiple access (TDMA) synchronization; ultra-low power;
  • fLanguage
    English
  • Journal_Title
    Solid-State Circuits, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9200
  • Type

    jour

  • DOI
    10.1109/JSSC.2015.2480854
  • Filename
    7299274