Enhanced RF Power Conversion for Sensor Networks and Embedded Sensors

被引:0
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作者
Jordan, Willy [1 ]
Barakat, Adel [1 ]
Gyawali, Babita [1 ]
Pokharel, Ramesh K. [1 ]
机构
[1] Graduate School of Information Science and Electrical Engineering, Kyushu University, 744 Motooka, Fukuoka,819-0395, Japan
关键词
Beam forming networks - Beamforming - Body sensor networks - Electric losses - HVDC power transmission - Impedance matching (electric) - Inductive power transmission - Integrated circuit design - MOS devices - MOSFET devices - Oxide semiconductors - Rectifier substations - Solid state rectifiers;
D O I
10.3390/info16030212
中图分类号
学科分类号
摘要
Wireless power transfer using beamforming technology has recently gained significant attention for sensor networks and embedded systems. This technology uses array antennas and mid-range RF power (15–20 dBm) rectifiers for efficient power delivery to sensors. Despite its potential, research on mid-range RF power CMOS rectifiers remains limited. Addressing this gap, we propose a high-efficiency pMOS-based rectifier employing a body-biasing technique—a proven method for enhancing device performance—specifically designed for wideband and mid-range RF power RF applications. Conventional rectifiers often depend on precise input impedance matching to achieve high power conversion efficiency (PCE), which restricts bandwidth and limits practicality in dynamic environments. To overcome these challenges, the proposed design integrates a modified matching network, combined with dynamic body-biasing, which lowers the pMOS threshold voltage and minimizes power losses. Simulations reveal a peak PCE of 60.5%, with efficiency exceeding 50% across a broad frequency range up to 2.5 GHz—significantly outperforming traditional designs. Unlike conventional impedance-matching solutions, this rectifier maintains robust performance under input mismatches, making it well-suited for beamforming-based WPT systems. This study highlights the potential of integrating body-biasing with advanced matching networks for efficient wideband rectifiers. © 2025 by the authors.
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