A W-Band Bidirectional Vector Switching Phase Shifter Using a Directional Rat-Race Coupler

0 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE microwave and wireless technology letters Pub Date : 2024-09-30 DOI:10.1109/LMWT.2024.3457316
Sungwon Kwon;Byung-Wook Min
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Abstract

This letter presents a low-loss 360° bidirectional variable gain phase shifter that achieves vector-sum phase shifting without I/Q signal attenuation. The proposed phase shifter exhibits lower insertion loss than conventional designs through a directional rat-race coupler (RRC)-based asymmetric power dividing. Using transistor switches for phase states and double-pole double-throw switches (DPDTs) for variable gain, all the phase-shifted and variable gain states are achieved through separated phase and gain control without calibration. This reduces chip size and simplifies calibration and beamforming by replacing separate phase shifters and attenuators in the transmit (TX) and receive (RX) channels. The proposed phase shifter is fabricated using 28-nm bulk CMOS technology and has a size of 0.16 mm2 excluding pads. At 94 GHz, the root mean square (rms) phase error is 2.5°, rms gain error is 0.5 dB, and measured insertion loss is $13.2~\pm ~0.7$ dB without dc power consumption.
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使用定向鼠赛耦合器的 W 波段双向矢量开关移相器
这封信介绍了一种低损耗 360° 双向可变增益移相器,它能在没有 I/Q 信号衰减的情况下实现矢量相加移相。通过基于定向鼠兔耦合器(RRC)的非对称功率分配,该移相器的插入损耗低于传统设计。相位状态使用晶体管开关,可变增益使用双刀双掷开关 (DPDT),所有移相和可变增益状态都是通过分离的相位和增益控制实现的,无需校准。通过取代发射(TX)和接收(RX)通道中的单独移相器和衰减器,从而减小了芯片尺寸,简化了校准和波束成形。拟议的移相器采用 28 纳米体 CMOS 技术制造,尺寸为 0.16 平方毫米(不包括焊盘)。在 94 GHz 频率下,均方根相位误差为 2.5°,均方根增益误差为 0.5 dB,测量插入损耗为 13.2~pm ~0.7$ dB,无直流功耗。
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