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Research Article

A circularly polarized implantable rectenna for self-charging pacemaker

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Pages 1576-1588 | Received 21 Jul 2021, Accepted 28 Jan 2022, Published online: 09 Feb 2022

References

  • Werner JU, Hexamer M, Meine M, et al. Restoration of cardio-circulatory regulation by rate-adaptive pacemaker systems the bioengineering view of a clinical problem. IEEE Trans Biomed Eng. 1999;46(9):1057–1064.
  • Xiao C, Cheng D, Wei K. An LCC-C compensated wireless charging system for implantable cardiac pacemakers: theory, experiment, and safety evaluation. IEEE Trans Power Electronics. 2018;33(6):4894–4905.
  • Asif SM, Hansen J, Khan MS, et al. Design and in vivo test of a battery less and fully wireless implantable asynchronous pacing system. IEEE Trans Biomed Eng. 2016;63(5):1070–1081.
  • Liu C, Guo YX, Sun H, et al. Design and safety considerations of an implantable rectenna for far-field wireless power transfer. IEEE Trans Antennas Propag. 2014;62(11):5798–5806.
  • Bakogianni S, Koulouridis S. A dual-band implantable rectenna for wireless data and power support at Sub-GHz region. IEEE Trans Antennas Propag. 2019;67(11):6800–6810.
  • Xu LJ, Xu JP, Chu ZJ, et al. Near-field wireless power transfer to deep-tissue implants for biomedical applications. IEEE Trans Antennas Propag. 2020;68(2):1098–1106.
  • Xu LJ, Xu JP, Chu ZJ, et al. Circularly polarized implantable antenna with improved impedance matching. IEEE Antennas Wirel Propag Lett. 2020;19(5):876–880.
  • Abdi A, Ghorbani F, Aliakbarian H, et al. Electrically small spiral PIFA for deep implantable devices. IEEE Access. 2020;8:158459–158474.
  • Hayat S, Shah SKA, Yoo H. Miniaturized dual-band circularly polarized implantable antenna for capsule endoscopic system. IEEE Trans Antennas Propag. 2021;69(4):1885–1895.
  • Saha P, Mitra D, Parui SK. A Circularly polarized implantable monopole antenna for biomedical applications. Prog Electromagn Res C. 2018;85:167–175.
  • Hosain MK, Kouzani AZ, Samad MF, et al. A miniature energy harvesting rectenna for operating a head-mountable deep brain stimulation device. IEEE Access. 2015;3:223–234.
  • Cheng HW, Yu TC, Luo CH. Direct current driving impedance matching method for rectenna using medical implant communication service band for wireless battery charging. IET Microw Antennas Propag. 2013;7(4):277–282.
  • Hosain MK, Kouzani AZ, Tye SJ, et al. Development of a compact rectenna for wireless powering of a head-mountable deep brain stimulation device. IEEE J Transl Eng Health Med. 2014;2(1500113):1–13.
  • Asif SM, Iftikhar A, Hansen JW, et al. A novel RF-powered wireless pacing via a rectenna-based pacemaker and a wearable transmit-antenna array. IEEE Access. 2019;7:1139–1148.
  • Abiri P, Abiri A, Packard RRS, et al. Inductively powered wireless pacing via a miniature pacemaker and remote stimulation control system. Sci Rep. 2017;7:1–10.
  • Lin W, Ziolkowski RW. Electrically small huygens CP rectenna with a driven loop element maximizes Its wireless power transfer efficiency. IEEE Trans Antennas Propag. 2020;68(1):540–545.
  • Du JX, Bo SF, Cao YF, et al. Broadband circularly polarized rectenna with wide dynamic-power-range for efficient wireless power transfer. IEEE Access. 2020;8:80561–80571.
  • Jie AM, Nasimuddin N, Karim AF, et al. A dual-band efficient circularly polarized rectenna for RF energy harvesting systems. Int J RF Microw Comput-Aided Eng. 2018;21665:1–11.
  • Abdi A, Aliakbarian H. A miniaturized UHF-band rectenna for power transmission to deep-body implantable devices. IEEE J Transl Eng Health Med. 2019;7(1900311):1–11.
  • Zada M, Shah IA, Basir A, et al. Ultra-compact implantable antenna with enhanced performance for leadless cardiac pacemaker system. IEEE Trans Antennas Propag. 2021;69(2):1152–1157.
  • Chow EY, Yang CL, Irazoqui PP. Wireless powering and propagation of radio frequencies through tissueWireless power transfer. 1st ed. Denmark: River Publishers; 2012.
  • Yilmaz T, Karacolak T, Topsakal E. Characterization and testing of a skin mimicking material for implantable antennas operating at ISM band (2.4 GHz–2.48 GHz). IEEE Antennas Wirel Propag Lett. 2008;7:418–420.
  • Pozar DM. Microwave Engineering; 2012: 231p.

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