El-Desouki Munir M, Qasim Syed Manzoor, BenSaleh Mohammed S, Deen M Jamal
King Abdulaziz City for Science and Technology (KACST), Riyadh 11442, Saudi Arabia.
Department of Electrical and Computer Engineering, McMaster University, Hamilton, ON L8S 4K1, Canada.
Sensors (Basel). 2015 May 7;15(5):10791-805. doi: 10.3390/s150510791.
The demand for radio frequency (RF) transceivers operating at 2.4 GHz band has attracted considerable research interest due to the advancement in short range wireless technologies. The performance of RF transceivers depends heavily on the transmitter and receiver front-ends. The receiver front-end is comprised of a low-noise amplifier (LNA) and a downconversion mixer. There are very few designs that focus on connecting the single-ended output LNA to a double-balanced mixer without the use of on-chip transformer, also known as a balun. The objective of designing such a receiver front-end is to achieve high integration and low power consumption. To meet these requirements, we present the design of fully-integrated 2.4 GHz receiver front-end, consisting of a narrow-band LNA and a double balanced mixer without using a balun. Here, the single-ended RF output signal of the LNA is translated into differential signal using an NMOS-PMOS (n-channel metal-oxide-semiconductor, p-channel metal-oxide-semiconductor) transistor differential pair instead of the conventional NMOS-NMOS transistor configuration, for the RF amplification stage of the double-balanced mixer. The proposed receiver circuit fabricated using TSMC 0.18 µm CMOS technology operates at 2.4 GHz and produces an output signal at 300 MHz. The fabricated receiver achieves a gain of 16.3 dB and consumes only 6.74 mW operating at 1.5 V, while utilizing 2.08 mm2 of chip area. Measurement results demonstrate the effectiveness and suitability of the proposed receiver for short-range wireless applications, such as in wireless sensor network (WSN).
由于短距离无线技术的进步,对工作在2.4GHz频段的射频(RF)收发器的需求引起了相当大的研究兴趣。RF收发器的性能在很大程度上取决于发射机和接收机前端。接收机前端由一个低噪声放大器(LNA)和一个下变频混频器组成。很少有设计专注于在不使用片上变压器(也称为巴伦)的情况下将单端输出LNA连接到双平衡混频器。设计这样一个接收机前端的目的是实现高集成度和低功耗。为了满足这些要求,我们提出了一种全集成2.4GHz接收机前端的设计,它由一个窄带LNA和一个不使用巴伦的双平衡混频器组成。在这里,LNA的单端RF输出信号在双平衡混频器的RF放大阶段,使用NMOS-PMOS(n沟道金属氧化物半导体,p沟道金属氧化物半导体)晶体管差分对而不是传统的NMOS-NMOS晶体管配置转换为差分信号。采用台积电0.18μm CMOS技术制造的所提出的接收机电路工作在2.4GHz,并产生300MHz的输出信号。制造的接收机在1.5V工作电压下实现了16.3dB的增益,功耗仅为6.74mW,同时占用2.08mm²的芯片面积。测量结果证明了所提出的接收机对于短距离无线应用(如无线传感器网络(WSN))的有效性和适用性。