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March 29, 2026Results in Engineering0 citationsOpen Access

A Generic M-Phase, N-Stage Folded Cross-Coupled CMOS Rectifier Architecture for Low-Power RF Energy Harvesting

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AMAhmed Reda MohamedAAAbdulaziz Al-KhulaifiMAMuneer A. Al Absi

Key Points

  • The objective is to design a generic M-phase, N-stage CMOS rectifier for effective RF energy harvesting while enhancing power efficiency and stability.
  • Developed a rectifier architecture for RF energy harvesting with M-phase and N-stage designs.
  • Implemented simulation-driven, LUT-based co-design for rectifier and impedance matching.
  • Incorporated parasitic effects into the design to optimize impedance matching.
  • Conducted post-layout simulations using 180-nm CMOS technology at 920 MHz.
  • Achieved a peak power conversion efficiency of 77.1% at -12.5 dBm.
  • Demonstrated a dynamic range exceeding 25 dB and output voltage stabilization around 2.1 V.
  • Measured only 1.8 mV pp ripple at output, indicating efficient energy transfer.

Abstract

• Generic M-phase, N-stage folded CC CMOS rectifier for RF energy harvesting. • LUT-based, simulation-driven rectifier-matching co-design including parasitics. • Parasitic-aware L-match achieves ∼ – 20 dB S11 at 920 MHz. • Data-driven phase/stage study shows lower ripple and wider dynamic range. • PEX: 77.1 % PCE @ -12.5 dBm; >25 dB DR; 2.1 V, 1.8 mVpp ripple. This paper presents a generic, parameterized M -phase, N -stage folded cross-coupled CMOS rectifier architecture for low-power RF energy harvesting. A simulation-driven, lookup-table (LUT)–based rectifier and impedance-matching co-design framework is introduced. The framework explicitly incorporates layout, package, and PCB parasitic elements, such as bond-wire inductance, pad capacitance, and PCB trace effects, into the input matching network design to ensure robust impedance matching and efficient power transfer. The folded multi-phase organization enables compact implementation through phase-interleaved charge transfer. As a result, power conversion efficiency (PCE), dynamic range, and output stability are improved across scalable phase and stage combinations. A representative case study is selected based on a target output voltage of approximately 2 V, which is suitable for powering modern low-power IoT and biomedical circuits without additional DC–DC conversion. Post-layout (PEX) simulations are performed in 180-nm CMOS technology at 920 MHz with a 100 kΩ load. A four-phase, four-stage implementation achieves a peak PCE of 77.1% at − 12.5 dBm, with a dynamic range exceeding 25 dB and a sensitivity of − 16.8 dBm. The rectifier delivers approximately 2.1 V with 1.8 mV pp ripple using a 2 pF load capacitor. Monte Carlo and process–voltage–temperature simulations confirm robust operation. Benchmarking using established figures of merit demonstrates competitive efficiency and scalability compared with prior art.

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Cite This Study

Mohamed et al. (2026) studied this question.

synapsesocial.com/papers/69c8c336de0f0f753b39dd06https://doi.org/10.1016/j.rineng.2026.110283
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