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A D-Band 6-bit Bi-directional Variable Gain Phase Shifter With 1.3°/0.2 dB RMS Phase/Gain Errors in 40 nm Bulk CMOS for 6G Communications
Journal article   Peer reviewed

A D-Band 6-bit Bi-directional Variable Gain Phase Shifter With 1.3°/0.2 dB RMS Phase/Gain Errors in 40 nm Bulk CMOS for 6G Communications

Lize Wang, Nengxu Zhu, Yibo Cui, Zhifu Hu, Meilin He, Keyuan Chen, Keping Wang, Kiat Seng Yeo, Kaixue Ma and Fanyi Meng
IEEE transactions on circuits and systems. I, Regular papers, pp.1-12
2025

Abstract

<italic xmlns:ali="http://www.niso.org/schemas/ali/1.0/" xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance">D -band Attenuation bi-directional Bidirectional control Delays Gain Logic gates passive Phase shifters phase-compensated Phased arrays Power transmission lines quasi-zero-impedance transmission lines Switching circuits Transistors variable gain phase shifter
This article demonstrates a D -band bi-directional variable gain phase shifter (Bi-VGPS), adopting a novel phase-compensated vector modulation array (PC-VMA) to compress the phase-invariant in the gain-tuning mode selection under digital controls. To address the large phase deviation of the classic transistor array in the gain-tuning mode selection especially at higher frequencies, a stair-like quasi-zero-impedance transmission line based PC-VMA is utilized to compensate the phase invariants, which ensures the phase consistency of the asymmetric I/O ports of each transistor in arrays and subsequently reduces the RMS phase/gain errors in the bi-directional operation. The Bi-VGPS comprises a coupled-line-based hybrid coupler, four compensated enhanced edge-coupling baluns, a Wilkinson power combiner, and two PC-VMAs. A proof-of-concept Bi-VGPS is implemented in 40-nm bulk CMOS technology, occupying a core area of 0.19mm {}^{\mathbf {2}} and consuming zero DC power. Measurement results show that the circuit features a 6-bit 360° phase shift from 135 to 145GHz, with in-band RMS phase/gain errors of 1.27°-3.39° and 0.21-0.57 dB, and a fine 1-dB-step gain adjustment range of 7dB.

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