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Performance evaluation of classical differential rectifier by using forward body biasing technique

机译:基于前向体偏置技术的经典差动整流器性能评估

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摘要

The growing usage of passive Radio frequency identification (RFID) tag has motivated research in its power supply design. The essential component of a power supply utilized in RFID is the rectifier which performs RF-to-DC conversion. In the implementation of rectifier, the conventional body bias technique is usually used where the body and source terminals of a transistor are tied together to achieve the zero bias threshold voltage value. In this work, an implementation of forward body biasing (FBB) scheme in the place of a conventional body biasing (CBB) technique in a rectifier is addressed. It has been found by using the post layout simulations that the FBB scheme is not only capable of extending the limits of the conventional differential rectifier in terms of load handling but also increases its RF signal sensitivity. In order to evaluate the performances of both architectures, the voltage conversion efficiency (VCE) and the power conversion efficiency (PCE) are selected as the figure of merits. The designs have been implemented in a standard 0.18μm CMOS technology and the simulations were done by using the Cadence spectre simulator at the RF frequency of 915 MHZ. The simulation results show improvement in PCE and VCE of the differential rectifier using FBB scheme when compared with the differential rectifier using CBB scheme.
机译:无源射频识别(RFID)标签的使用不断增长,已经激发了对其电源设计的研究。 RFID中使用的电源的基本组件是执行RF到DC转换的整流器。在整流器的实现中,通常使用常规的体偏置技术,其中将晶体管的体和源极端子绑在一起以实现零偏置阈值电压值。在这项工作中,解决了在整流器中替代传统的身体偏置(CBB)技术的正向身体偏置(FBB)方案的实现。通过使用布局后仿真发现,FBB方案不仅能够扩展传统差分整流器在负载处理方面的限制,而且还能提高其RF信号灵敏度。为了评估这两种架构的性能,选择电压转换效率(VCE)和功率转换效率(PCE)作为优缺点。这些设计已通过标准的0.18μmCMOS技术实现,并且使用Cadence光谱模拟器在915 MHZ的射频频率下进行了仿真。仿真结果表明,与使用CBB方案的差分整流器相比,使用FBB方案的差分整流器的PCE和VCE有所改善。

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