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JSSC 2021第2期mm-Wave65nmRadar

A 220-to-320-GHz FMCW Radar in 65-nm CMOS Using a Frequency-Comb Architecture

本文介绍了一种基于CMOS的超宽带FMCW雷达,采用太赫兹频率梳架构,实现了220至320 GHz的无缝扫描。
65nm CMOS, 220-to-320 GHz, 0.6 dBm EIRP, 22.8 dB SSB NF
FMCW雷达太赫兹频率梳CMOS基片集成波导
创新点1:太赫兹频率梳架构(系统创新)。该架构通过高并行频谱感知技术,显著降低了太赫兹前端电路的带宽需求,并在整个工作频段内保持了峰值输出功率和灵敏度。具体表现为EIRP和NF值在100 GHz带宽内仅波动8.8 dB和14.6 dB。
创新点2:基于方形混频器优先架构的天线共享方案(电路创新)。该方案不仅实现了紧凑的尺寸,还通过多通道雷达中频数据拼接,提高了系统集成度和数据处理效率。
创新点3:多谐振基片集成波导天线结构(方法创新)。该结构创新性地避免了高成本硅透镜的使用,通过多谐振设计实现了15%的阻抗匹配分数带宽,显著提升了天线的宽带性能。
创新点4:频率啁啾的速度和线性度提升(系统创新)。通过频率梳系统优化,实现了更快的频率啁啾速度和更高的线性度,进一步提升了雷达的测距分辨率和性能。
Abstract
This article presents a CMOS-based, ultra- broadband frequency-modulated continuous-wave (FMCW) radar using a terahertz (THz) frequency-comb architecture. The high-parallelism spectral sensing provided by this architecture significantly reduces the bandwidth requirement for the THz front-end circuitry and ensures that the peak output power and sensitivity are maintained across the entire band of oper- ation. The speed and linearity of frequency chirping are also improved by the comb system. An antenna-sharing scheme based on a square-mixer-first architecture is used, which not only leads to compact size but also facilitates the stitching of the multichannel radar IF data. To avoid the usage of high-cost silicon lens in the on-chip broadband radiation, a multi- resonance substrate-integrated-waveguide (SIW) antenna struc- ture is innovated, which provides 15% fractional bandwidth for impedance matching. As a proof of concept, a five-tone radar prototype that seamlessly scans the entire 220-to-320-GHz band is demonstrated. In the measurement, the multi-channel-aggregated equivalent-isotropically radiated power (EIRP) is 0.6 dBm and is further boosted to ∼20 dBm with a TPX (polymethylpentene) lens. The measured minimum single-sideband noise figure (SSB NF) of the receiver, including the antenna loss and baseband amplifier, is 22.8 dB. Due to the comb architecture, the EIRP and NF values fluctuate by only 8.8 and 14.6 dB, respectively, across the 100-GHz bandwidth. The chip has a die s