• DocumentCode
    52778
  • Title

    Development of a Compact Rectenna for Wireless Powering of a Head-Mountable Deep Brain Stimulation Device

  • Author

    Hosain, Md Kamal ; Kouzani, Abbas Z. ; Tye, Susannah J. ; Abulseoud, Osama A. ; Amiet, Andrew ; Galehdar, Amir ; Kaynak, Akif ; Berk, Michael

  • Author_Institution
    Sch. of Eng., Deakin Univ., Geelong, VIC, Australia
  • Volume
    2
  • fYear
    2014
  • fDate
    2014
  • Firstpage
    1
  • Lastpage
    13
  • Abstract
    Design of a rectangular spiral planar inverted-F antenna (PIFA) at 915 MHz for wireless power transmission applications is proposed. The antenna and rectifying circuitry form a rectenna, which can produce dc power from a distant radio frequency energy transmitter. The generated dc power is used to operate a low-power deep brain stimulation pulse generator. The proposed antenna has the dimensions of 10 mm × 12.5 mm × 1.5 mm and resonance frequency of 915 MHz with a measured bandwidth of 15 MHz at return loss of -10 dB. A dielectric substrate of FR-4 of εr = 4.8 and δ = 0.015 with thickness of 1.5 mm is used for both antenna and rectifier circuit simulation and fabrication because of its availability and low cost. An L-section impedance matching circuit is used between the PIFA and voltage doubler rectifier. The impedance matching circuit also works as a low-pass filter for elimination of higher order harmonics. Maximum dc voltage at the rectenna output is 7.5 V in free space and this rectenna can drive a deep brain stimulation pulse generator at a distance of 30 cm from a radio frequency energy transmitter, which transmits power of 26.77 dBm.
  • Keywords
    DC generators; bioelectric potentials; biomedical electronics; brain; impedance matching; low-pass filters; low-power electronics; patient treatment; planar inverted-F antennas; pulse generators; radiofrequency power transmission; rectennas; rectifying circuits; FR-4; L-section impedance matching circuit; PIFA design; antenna dimensions; antenna fabrication; antenna simulation; bandwidth measurement; compact rectenna development; dc power generation; dielectric substrate; distance 30 cm; frequency 15 MHz; frequency 915 MHz; head-mountable deep brain stimulation device; high order harmonics elimination; loss -10 dB; low-pass filter; low-power deep brain stimulation pulse generator; radiofrequency energy transmitter; rectangular spiral planar inverted-F antenna design; rectenna maximum dc voltage; rectifier circuit fabrication; rectifier circuit simulation; rectifying circuitry; resonance frequency; return loss; size 1.5 mm; size 10 mm; size 12.5 mm; voltage 7.5 V; voltage doubler rectifier; wireless power transmission; Brain modeling; DC machines; Impedance; Power transmisison; Rectennas; Satellite broadcasting; Wireless communication; Deep brain stimulation; head mountable device; passive device; planar inverted-F antenna; rat; specific absorption rate;
  • fLanguage
    English
  • Journal_Title
    Translational Engineering in Health and Medicine, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    2168-2372
  • Type

    jour

  • DOI
    10.1109/JTEHM.2014.2313856
  • Filename
    6778778