驻波比
电阻抗
电子工程
天线(收音机)
宽带
电气工程
计算机科学
声学
工程类
物理
电信
微带天线
作者
David Munzer,Naga Sasikanth Mannem,Jeongseok Lee,Hua Wang
出处
期刊:IEEE Journal of Solid-state Circuits
[Institute of Electrical and Electronics Engineers]
日期:2023-06-01
卷期号:58 (6): 1535-1551
标识
DOI:10.1109/jssc.2022.3211935
摘要
High-performance RF/mm-Wavefront ends often require in situ sensing circuitries to monitor performance metrics and drive their built-in-self-test (BiST) algorithms for performance recovery or optimization. In large-scaled integrated phased-arrays, antenna coupling often results in dynamic beam-dependent impedance variations [antenna voltage standing wave ratio (VSWR)] and front-end degradation, necessitating in situ load-invariant power/impedance sensors. However, the state-of-the-art mm-Wave sensors only demonstrate sensing at a single frequency, instead of the entire frequency band of interest with limited accuracy over antenna VSWR. Therefore, we propose a broadband current/voltage sensing-based VSWR resilient true power/impedance sensor supporting single-ended interfaces using the GlobalFoundries 45 nm CMOS SOI process. Comprehensive theoretical analyses of the coupling mechanisms and analog multiplier architectures are presented. Sources of error for power sensing are highlighted in detail. At 34 GHz, the proposed sensor measures the power sensing error $(\text {PSE}) \le \pm 1$ dB for 3:1 VSWR and ±0.5 dB for 2:1 VSWR. Over 22–41 GHz, the measured PSE is $\le \pm 3.4$ dB for 3:1 VSWR and ±1.5 dB for 2:1 VSWR. In addition, the proposed sensor under a 50 $\Omega $ load demonstrates a maximum dynamic range of 22.89 dB at 42 GHz and a dynamic range $>21.46$ dB over 27–41 GHz. At 33 GHz, the measured $\vert \Gamma \vert /\angle \Gamma $ errors are $\le 0.072$ /7.3° for 3:1 VSWR and $\le0.04$ /7.13° for 2:1 VSWR, while demonstrating $\vert \Gamma \vert /\angle \Gamma $ errors of $\le 0.2$ /34° for 3:1 VSWR and $\le 0.11$ /27° for 2:1 VSWR over the entire 27–41 GHz BW. The chip die occupies an area of 0.97 $\times1.99$ mm and a sensor core area of 0.48 $\times1.66$ mm.
科研通智能强力驱动
Strongly Powered by AbleSci AI