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JSSC 2024第7期RF & Wireless65nm

Full-Duplex Receiver With Wideband, High-Power RF Self-Interference Cancellation Based on Capacitor Stacking in Switched-Capacitor Delay Lines Sasank Garikapati , Student Member , IEEE

利用时间交织多路径开关电容电路实现宽带高功率射频自干扰消除的全双工接收机
0.1至1 GHz工作频率
全双工自干扰消除开关电容低噪声放大器CMOS
采用时间交织多路径开关电容电路实现大宽带延迟
利用电容堆叠获得被动电压增益补偿延迟元件损耗
引入新型低噪声跨阻放大器架构降低接收机噪声系数
Abstract
The self-interference (SI) channels in full-duplex (FD) radios have large nano-second-scale delay spreads, which poses a significant challenge in designing SI cancelers that can emulate the SI channel over wide bandwidths. Passive implementations of high delay lines have a prohibitively large form factor and loss when implemented on silicon, whereas active implementations suffer from noise and linearity penalties. In this work, we leverage time-interleaved multi-path switched-capacitor (SC) circuits to provide large wideband delays with a small form factor and low power (LP) consumption to implement RF and baseband (BB) cancelers in an FD receiver (RX). We utilize capacitor stacking to obtain passive voltage gain to compensate for the loss of these delay elements, thus permitting an increased number of interleaved paths and, hence, a higher delay. Further- more, to reduce the RX noise figure (NF) penalty due to injecting the cancellation signal into the receiver, we introduce a novel low-noise trans-impedance amplifier (LNTA) architecture, which injects the cancellation signal into RX and also accomplishes finite impulse response (FIR) filter weighting and summation. The FD receiver is implemented in a standard 65-nm CMOS process and operates from 0.1 to 1 GHz. The RF/BB canceler delay cells have real-/complex-valued weighting with delays ranging Manuscript received 30 May 2023; revised 25 September 2023, 10 December 2023, and 17 December 2023; accepted 17 December 2023. Date