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Dual-Band Quad-Polarized Anti-Multipath Interference Antenna for IoT Indoor Backscatter Positioning

  • Zijian Xing
  • , Xiaoting Wang
  • , Pengyue Yang
  • , Chow Yen Desmond Sim
  • , Guangwei Yang
  • , Jianying Li
  • , Ling Wang
  • Northwestern Polytechnical University Xian
  • National Sun Yat-sen University

Research output: Contribution to journalArticlepeer-review

7 Scopus citations

Abstract

The cross-polarization backscatter positioning system based on the information-energy decoupling mechanism can achieve high gain and obstacle avoidance advantages while reducing the number of positioning antennas. A novel dual-band quad-polarized antenna design with in-band radar cross section (RCS) reduction using polarization conversion metasurface (PCM) for IoT anti-multipath indoor positioning is first proposed in this article. At first, a dual-band reflective miniaturization PCM unit is designed to analyze the relationship between the polarization conversion band and in-phase reflection band under u- and v- polarized incident waves. This provides theoretical support for PCM to simultaneously achieve radiation enhancement and in-band RCS reduction. Then, a dual-band shaping dipole antenna is designed as a radiator. Finally, a dual-band Wilkinson power divider and Butler matrix are designed to feed the 2\times 2 dipole array to achieve quad-polarization. In the overall design of the antenna, according to the principle of in-phase reflection in the dual-band, every 4\times 4 subarray of PCM is used as a reflector for every dipole antenna in the v direction to realize unidirectional radiation and low-profile design. The quad-polarization of X, Y, left-hand circular polarization (LHCP), and right-hand circular polarization (RHCP) is achieved within the bandwidths of 0.85–0.93 GHz and 2.38–2.5 GHz. Based on the principle of reflection phase cancellation in the dual-band, an 8\times 8 arrangement of PCM units with their mirror units is designed to achieve in-band monostatic RCS reduction in the dual-band range of 0.745–1.02 GHz and 2.1–2.67 GHz. Therefore, this antenna is highly suitable for the application of item-level high-precision cross-polarization positioning systems in multiconductor environments with indoor deployment of multiple IoT nodes.

Original languageEnglish
Pages (from-to)43707-43719
Number of pages13
JournalIEEE Internet of Things Journal
Volume12
Issue number20
DOIs
StatePublished - 2025

Keywords

  • Dual-band
  • polarization conversion metasurface (PCM)
  • quad-polarized (QP) antenna
  • radar cross section (RCS)

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