Abstract
This article proposes a novel microwave oscillator-based microfluidic sensor for measurement of the dielectric constant. The sensor consists of a sensing oscillator and a frequency demodulator. The sensing oscillator comprises a T-shaped $LC$ resonator (TLCR), which not only concentrates the electric field (E-field) in a narrow gap for liquid sensing but also serves as a frequency-selective element. When a test liquid is injected into the microfluidic channel placed above the sensing gap, the oscillation frequency of the sensing oscillator varies according to the liquid's dielectric constant, $\varepsilon{r}$. The proposed frequency demodulator converts this frequency-modulated (FM) signal into a corresponding voltage. Calibration liquids with known $\varepsilon{r}$ can be used to calibrate the microfluidic sensor and establish a relationship between the measured voltage and the dielectric constant. In this study, water-ethanol mixtures and water-glucose solutions are used as the test liquids to evaluate the measurement performance of the system. The measurements obtained using the proposed sensor agree very well with those obtained using a commercial dielectric probe. Since the proposed dielectric sensor has the advantages of high sensitivity, compact design, and a self-sustaining microwave test source, it has the potential to be further developed as a practical organic chemical sensor for industrial applications.
| Original language | English |
|---|---|
| Pages (from-to) | 628-637 |
| Number of pages | 10 |
| Journal | IEEE Transactions on Microwave Theory and Techniques |
| Volume | 72 |
| Issue number | 1 |
| DOIs | |
| State | Published - 1 Jan 2024 |
Keywords
- Dielectric measurement
- liquid dielectric sensor
- microfluidic sensing oscillator
- microfluidics
- microwave microfluidic sensor
- T-shaped LC resonator (TLCR)
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