A 24-GHz Frequency-Locked Loop-Based Microwave Microfluidic Sensor for Concentration Detection

Hsiu-Che Chang;Chung-Tse Michael Wu;Chao-Hsiung Tseng
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Abstract

This article presents a 24-GHz microfluidic sensor using frequency-locked loop (FLL) technology for detecting liquid concentrations. The sensor, based on FLL, features a microfluidic channel placed over an asymmetrical coplanar waveguide resonator (ACPWR) that functions as a sensing device. For testing purposes, we use ethanol–water mixtures and glucose–water solutions as the liquid under test. Due to the electric field distribution in media with varying dielectric constants, the phase of the signal undergoes different phase deviations. The FLL-based sensor is capable of detecting these phase deviations and, in response, produces a frequency-modulated signal. This signal is subsequently demodulated into a corresponding voltage with the aid of a frequency demodulator, realized through a phase detector. Consequently, the sensor demonstrates the capability to differentiate between tested liquids of varying concentrations and offers a linear response that correlates the output voltage with the liquid concentration. The proposed 24-GHz FLL microfluidic sensor offers advantages, such as cost effective, high sensitivity, and compact size. It has a great possibility to implement this sensor using the system-on-chip technology. As it combined with Internet of Things technologies, it may have a capability of real-time biomedical specimen sensing for daily life.
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用于浓度检测的基于 24 GHz 锁频环的微波微流控传感器
本文介绍了一种利用锁频环(FLL)技术检测液体浓度的 24 GHz 微流控传感器。这种基于 FLL 技术的传感器具有一个置于非对称共面波导谐振器(ACPWR)上的微流体通道,而非对称共面波导谐振器则用作传感装置。在测试中,我们使用乙醇-水混合物和葡萄糖-水溶液作为被测液体。由于电场分布在介电常数不同的介质中,信号的相位会发生不同的相位偏差。基于 FLL 的传感器能够检测到这些相位偏差,并产生频率调制信号。随后,借助相位检测器实现的频率解调器,将该信号解调为相应的电压。因此,该传感器能够区分不同浓度的被测液体,并提供线性响应,使输出电压与液体浓度相关联。所提出的 24-GHz FLL 微流控传感器具有成本低、灵敏度高、体积小等优点。利用片上系统技术实现该传感器具有极大的可能性。当它与物联网技术相结合时,就有可能为日常生活提供实时生物医学样本传感功能。
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