eprintid: 8858 rev_number: 2 eprint_status: archive userid: 1 dir: disk0/00/00/88/58 datestamp: 2023-11-09 16:20:47 lastmod: 2023-11-09 16:20:47 status_changed: 2023-11-09 16:13:42 type: conference_item metadata_visibility: show creators_name: Ibrahim, R. creators_name: Gilani, S.F.U.H. creators_name: Jamil, A. creators_name: Yusoff, M.Z. title: Design and analysis of an RF rectifying circuit upon integration with monopole and Fractal antennas ispublished: pub keywords: Antennas; Electric batteries; Electric rectifiers; Energy harvesting; Fractals; Integration; Manufacture; Microstrip antennas; Mobile antennas; Monopole antennas; Partial discharges; Radio frequency identification (RFID); Rectifying circuits; Robotics; Timing circuits; Wi-Fi; Wireless local area networks (WLAN), Design and analysis; Fractal antenna; monopole; Output voltages; Received signal strength; Voltage multipliers; Voltage output; Wi-Fi signals, Rectennas note: cited By 0; Conference of 2nd IEEE International Symposium on Robotics and Manufacturing Automation, ROMA 2016 ; Conference Date: 25 September 2016 Through 27 September 2016; Conference Code:126431 abstract: RFID tags are commonly used in the industry for tracking and managing assets. The long range of a RFID reader is essential for detection of the RFID tags. Due to this requirement, tags are powered by batteries which deplete over a period of time and cause an inconvenience in the process of RFID tags detection. Therefore, a rectenna architecture consisting of a seven stage Cockroft-Walton voltage multiplier rectifying circuit and two Fractal antennas have been individually developed to counter the usage of batteries in RFID tags. The rectifying circuit harvests the RF energy generated by Wi-Fi signals to produce a voltage output. This paper focuses on the performance of the rectenna architecture after its integration with an antenna. The performance of a Koch-curve Fractal antenna, a bended Koch-curve Fractal antenna and a microstrip monopole antenna has been evaluated by measuring the output voltage after integration with the rectifying circuit. The Koch-curve Fractal antenna outperforms its counterparts in terms of received signal strength and output voltage produced. Therefore, the rectifying circuit is integrated with the Koch-curve Fractal antenna and effectively tested for average path loss. Hence, the performance of the rectenna is more optimized with Fractal antenna as compared to a microstrip monopole antenna. © 2016 IEEE. date: 2017 publisher: Institute of Electrical and Electronics Engineers Inc. official_url: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85015849624&doi=10.1109%2fROMA.2016.7847804&partnerID=40&md5=28e0fc7f61a22270a26ab680a071979c id_number: 10.1109/ROMA.2016.7847804 full_text_status: none publication: 2016 2nd IEEE International Symposium on Robotics and Manufacturing Automation, ROMA 2016 refereed: TRUE isbn: 9781509009282 citation: Ibrahim, R. and Gilani, S.F.U.H. and Jamil, A. and Yusoff, M.Z. (2017) Design and analysis of an RF rectifying circuit upon integration with monopole and Fractal antennas. In: UNSPECIFIED.