A UHF voltage multiplier circuit using a threshold-voltage cancellation technique

T. Feldengut, R. Kokozinski, S. Kolnsberg
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引用次数: 22

Abstract

The operating range of passive UHF transponder systems is largely determined by the tag current consumption and the rectifier efficiency. Reading ranges of several meters have recently been reported for many state of the art RFID (Radio frequency IDentification) tags [1]. At this distance, the main issue for the rectifier design is the low amplitude of the high frequency antenna signal. Schottky diodes are often used for their low forward voltage drop and high switching speed. As an alternative to Schottky diodes, different circuit techniques for compensating the threshold voltage of standard transistor diodes have been utilized [4]. The transistor gates are biased near the threshold voltage, so that the devices effectively act as diodes with very low forward voltage drop. In the presented rectifier, a secondary diode charge pump is used to generate the DC bias for the threshold voltage compensation. The circuit is implemented in a standard CMOS technology and operates at a minimum available power of −11.3 dBm for an output DC power of 7.5 µW.
一种采用阈值电压对消技术的超高频电压倍增电路
无源超高频应答系统的工作范围在很大程度上取决于标签电流消耗和整流器效率。最近报道了许多最先进的RFID(射频识别)标签的几米读取范围[1]。在这种距离下,整流器设计的主要问题是高频天线信号的低幅值。肖特基二极管因其低正向压降和高开关速度而被广泛使用。作为肖特基二极管的替代方案,已经使用了不同的电路技术来补偿标准晶体管二极管的阈值电压[4]。晶体管门偏置在阈值电压附近,因此器件有效地充当二极管,具有非常低的正向压降。在该整流器中,利用二次二极管电荷泵产生直流偏置,用于阈值电压补偿。该电路采用标准CMOS技术,最小可用功率为- 11.3 dBm,输出直流功率为7.5 μ W。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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