A 60 GHz Class-C Wide Tuning-Range Two-Core VCO Utilizing a Gain-Boosting Frequency Doubling Technique and an Adaptive Bias Scheme for Robust Startup.

IF 3.5 3区 综合性期刊 Q2 CHEMISTRY, ANALYTICAL Sensors Pub Date : 2025-02-06 DOI:10.3390/s25030981
Ioannis Dimitrios Psycharis, Vasileios Tsourtis, Grigorios Kalivas
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Abstract

This paper presents the design and the performance of a wide tuning-range millimeter-wave (mm-wave) two-core class-C 60 GHz VCO in 40 nm CMOS process, which can be integrated into wireless communication transceivers and radar sensors. The proposed architecture consists of a two-core 30 GHz fundamental VCO, a gain-boosted frequency doubler and an adaptive bias configuration. The two-core fundamental VCO structure achieves frequency generation in the vicinity of 30 GHz, where each VCO core targets a different frequency band. The two bands have sufficient overlap to accommodate for corner variations providing a large continuous tuning range. The desired frequency band is selected by activating or deactivating the appropriate VCO core, resulting in a robust switchless structure. This approach enables a considerably broad tuning range without compromising phase noise performance. Furthermore, the proposed topology utilizes an adaptive bias mechanism for robust start-up. Initially, the selected VCO core begins oscillating in class-B mode, and subsequently it transitions into class-C operation to offer improved performance. From post-layout simulations, after frequency doubling, the low-band VCO covers frequencies from 50.25 to 60.40 GHz, while the high-band VCO core spans frequencies from 58.8 to 73 GHz, yielding an overall tuning range of 36.92%. Owing to the gain-boosting topology, output power exceeds -14.2 dBm across the whole bandwidth. Simulated phase noise remains better than -92.1 dBc/Hz at a 1 MHz offset for all bands. Additionally, the two VCO cores never operate simultaneously, aiding in power efficiency.

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基于增益增强倍频技术和自适应偏置方案的60ghz c类宽调谐范围双核压控振荡器。
介绍了一种采用40 nm CMOS工艺的宽调谐范围毫米波(mm-wave)双核c类60 GHz压控振荡器的设计和性能,该器件可集成于无线通信收发器和雷达传感器中。所提出的架构包括一个双核30 GHz基频振荡器、一个增益增强倍频器和一个自适应偏置配置。双核基本VCO结构实现了30 GHz附近的频率生成,其中每个VCO核心针对不同的频段。两个波段有足够的重叠,以适应转角的变化,提供一个大的连续调谐范围。通过激活或停用适当的VCO核心来选择所需的频段,从而产生健壮的无开关结构。这种方法可以在不影响相位噪声性能的情况下实现相当宽的调谐范围。此外,该拓扑利用自适应偏置机制实现鲁棒启动。最初,选定的VCO核心开始在b类模式下振荡,随后它转变为c类操作,以提供改进的性能。从布局后的仿真结果来看,倍频后,低频段VCO覆盖50.25 ~ 60.40 GHz的频率范围,而高频段VCO核心覆盖58.8 ~ 73 GHz的频率范围,总体调谐范围为36.92%。由于增益增强拓扑,整个带宽的输出功率超过-14.2 dBm。所有频段在1 MHz偏移时,模拟相位噪声仍优于-92.1 dBc/Hz。此外,两个VCO内核从不同时工作,有助于提高功率效率。
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来源期刊
Sensors
Sensors 工程技术-电化学
CiteScore
7.30
自引率
12.80%
发文量
8430
审稿时长
1.7 months
期刊介绍: Sensors (ISSN 1424-8220) provides an advanced forum for the science and technology of sensors and biosensors. It publishes reviews (including comprehensive reviews on the complete sensors products), regular research papers and short notes. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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