Cai Xianfa, Xu Lizhong
School of Mechanical Engineering, Yanshan University, Qinhuangdao 066000, China.
Micromachines (Basel). 2022 Jun 16;13(6):952. doi: 10.3390/mi13060952.
To realize the real-time measurement of masses of nanoparticles, virus molecules, organic macromolecules, and gas molecules, and to analyze their physical and chemical properties, a ZnO nanowire (NW) resonator operating at room temperature with an ultrahigh resonant frequency, real-time detection, and high precision was designed and developed in this study. The machining method is simple and easy to integrate into an integrated circuit. A closed-loop detection system based on a phase-locked loop (PLL) and frequency modulation technology (FM) was used to perform closed-loop testing of electromagnetically excited ZnO NW. The first-order resonance frequency of the resonator was 10.358 MHz, the quality factor value was about 600, the frequency fluctuation value was about 300 Hz, and the FM range could reach 200 kHz. The equivalent circuit model of the resonator was established, the parasitic parameters during the test were obtained, and the frequency accuracy and phase noise of the resonator were analyzed and tested. The experimental results show that the closed-loop system can automatically control the resonator in a wide range of frequency bands, with good tracking performance of the resonant frequency, small frequency fluctuation, and low phase noise level.
为实现对纳米颗粒、病毒分子、有机大分子和气体分子质量的实时测量,并分析其物理和化学性质,本研究设计并开发了一种在室温下工作的具有超高谐振频率、实时检测和高精度的ZnO纳米线(NW)谐振器。其加工方法简单,易于集成到集成电路中。采用基于锁相环(PLL)和调频技术(FM)的闭环检测系统对电磁激励的ZnO NW进行闭环测试。谐振器的一阶谐振频率为10.358 MHz,品质因数约为600,频率波动值约为300 Hz,调频范围可达200 kHz。建立了谐振器的等效电路模型,获取了测试过程中的寄生参数,并对谐振器的频率精度和相位噪声进行了分析和测试。实验结果表明,该闭环系统能够在很宽的频带范围内自动控制谐振器,对谐振频率具有良好的跟踪性能,频率波动小,相位噪声水平低。