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May 14, 2026Electronics0 citationsOpen Access

Compact Wideband Circularly Polarized Rectenna with Enhanced Axial Ratio for RF Energy Harvesting

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XXXinlei XuHCH.P. ChenHJHang Jin

Key Points

  • The aim is to develop an efficient wideband circularly polarized rectenna for RF energy harvesting across multiple communication bands.
  • Design incorporates parasitic elements for current redistribution and nonlinear-aware impedance matching.
  • Crossed-dipole receiving antenna integrated with quarter-ring elements for enhanced performance.
  • Rectifying circuit uses a single-shunt diode half-wave topology with L-type and T-type networks.
  • Achieved peak conversion efficiencies of 56.7% at 2.45 GHz, 59.8% at 2.6 GHz, and 56.3% at 3.5 GHz with input powers of 7 dBm.
  • Demonstrated a fractional 3-dB axial ratio bandwidth of 52.7% (2.39–4.10 GHz) with superior radiation efficiency.
  • Stable rectification over a dynamic range from -15 dBm to 7 dBm, ensuring effectiveness in varied conditions.

Abstract

This paper proposes a compact axial-ratio-enhanced wideband circularly polarized rectenna for ambient RF energy harvesting. The proposed rectenna is designed to operate across the mainstream Wi-Fi (2.45 GHz) and 5G (2.6 GHz and 3.5 GHz) communication bands, achieving efficient RF energy capture and effective direct current (DC) conversion. From a design perspective, the proposed approach is developed based on parasitic-element-enabled current redistribution for broadband circular polarization and nonlinear-aware multi-stage impedance matching for wideband rectification. The receiving antenna is based on a crossed-dipole configuration integrated with quarter-ring elements. By employing techniques such as slotting and incorporating additional parasitic patches, a fractional 3-dB axial ratio bandwidth (ARBW) of 52.7% (2.39–4.10 GHz) is achieved, with a peak radiation efficiency of 90% and an average efficiency of 76% within the operating band. To realize wideband impedance matching with the receiving antenna, the rectifying circuit adopts a single-shunt diode half-wave topology, combining L-type and T-type matching networks to significantly extend the operating bandwidth. Experimental results demonstrate that at input power levels of 7 dBm, 7 dBm, and 9 dBm, the rectifier achieves peak conversion efficiencies of 56.7%, 59.8%, and 56.3% at the three target frequencies (2.45 GHz, 2.6 GHz, and 3.5 GHz), respectively. Furthermore, the rectifier exhibits stable rectification performance across a wide input power dynamic range from −15 dBm to 7 dBm. Consequently, the proposed rectenna holds significant application value for passive IoT nodes, low-power sensors, and self-sustainable electronic devices.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/6a0567bca550a87e60a1fdd3https://doi.org/10.3390/electronics15102068
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