CMOS超高频RFID整流器设计与匹配:工艺与温度变化分析

M. Wagih, Anand Savanth, Sahan Gamage, A. Weddell, S. Beeby
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引用次数: 0

摘要

射频(RF)功率传输是RFID系统的使能技术。CMOS RF整流器实现了小型化,并改善了与整个系统的集成。对于某些应用,整流器可能需要部署在高温或低温环境中,这可能会影响其功率转换效率(PCE)。本文提出了一种基于2S nm FDSOI工艺的高效率915 MHz CMOS Dickson电荷泵的设计,并研究了基于天线的阻抗匹配作为在不同温度和CMOS工艺变化下最大化PCE的方法。采用共同设计的天线,与简单的电感匹配相比,该整流器在-20dBm下的PCE提高了5.4倍。然后分析了PCE的CMOS工艺和温度变化。结果表明,通过输入阻抗匹配,整流器在-10°C时可保持-15dBm峰值PCE的94%。与最先进的迪克森乘法器相比,所提出的整流器和匹配技术实现了最高的PCE,同时具有最小的模具面积。
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CMOS UHF RFID Rectifier Design and Matching: an Analysis of Process and Temperature Variations
Radio Frequency (RF) power transfer is an enabling technology of RFID systems. CMOS RF rectifiers enable miniaturization and improved integration with full systems. For certain applications, rectifiers may need to be deployed in high or low temperature environments, which can affect their power conversion efficiency (PCE). This work presents the design of a high efficiency 915 MHz CMOS Dickson charge-pump in a 2S nm FDSOI process, and investigates antenna-based impedance matching as a method of maximizing the PCE for different temperatures and CMOS process variations. With a co-designed antenna, the proposed rectifier achieves $ 5.4\times $ higher PCE compared to simple inductive-matching at -20dBm. The PCE is then analyzed for CMOS process and temperature variations. It is shown that the rectifier can maintain 94% of its peak PCE at -15dBm at -10°C through input-impedance matching. The proposed rectifier and matching technique achieves the highest PCE compared to state-of-the-art Dickson multipliers, while having the smallest die area.
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