| Literature DB >> 35884274 |
Xuejing Lu1,2, Hongyi Ge2,3, Yuying Jiang2,3, Yuan Zhang3.
Abstract
Terahertz (THz)-detection technology has been proven to be an effective and rapid non-destructive detection approach in biomedicine, quality control, and safety inspection, among other applications. However, the sensitivity of such a detection method is limited due to the insufficient power of the terahertz source and the low content, or ambiguous characteristics, of the analytes to be measured. Metamaterial (MM) is an artificial structure in which periodic sub-wavelength units are arranged in a regular manner, resulting in extraordinary characteristics beyond those possessed by natural materials. It is an effective method to improve the ability of terahertz spectroscopy detection by utilizing the metamaterial as a sensor. In this paper, a dual-band, high-sensitivity THz MM sensor based on the split metal stacking ring resonator (SMSRR) is proposed. The appliance exhibited two resonances at 0.97 and 2.88 THz in the range of 0.1 to 3 THz, realizing multi-point matching between the resonance frequency and the characteristic frequency of the analytes, which was able to improve the reliability and detection sensitivity of the system. The proposed sensor has good sensing performance at both resonant frequencies and can achieve highest sensitivities of 304 GHz/RIU and 912 GHz/RIU with an appropriate thickness of the analyte. Meanwhile, the advantage of multi-point matching of the proposed sensor has been validated by distinguishing four edible oils based on their different refractive indices and demonstrating that the characteristics obtained in different resonant frequency bands are consistent. This work serves as a foundation for future research on band extension and multi-point feature matching in terahertz detection, potentially paving the way for the development of high-sensitivity THz MM sensors.Entities:
Keywords: dual-band sensor; high-sensitivity; metamaterial; refractive index; terahertz
Mesh:
Substances:
Year: 2022 PMID: 35884274 PMCID: PMC9313385 DOI: 10.3390/bios12070471
Source DB: PubMed Journal: Biosensors (Basel) ISSN: 2079-6374
Figure 1(a) Schematic diagram of the proposed SMSRR; (b) cross-sectional view of the SMSRR.
Figure 2Simulated transmission spectrum of the proposed SMSRR.
Figure 3The electric field distribution at (a) and (b) ; the magnetic field distribution at (c) and (d) ; the current distribution at (e) (LC resonance) and (f) (dipole resonance).
Figure 4The transmission spectra of the THz MM sensor at (a) and (b) with changing from 1.0 to 1.3; (c) resonance frequency shift of the sensor as a function of and the linear fitting results.
Figure 5Resonant frequency shift of the sensor as a function of refractive index with different thicknesses of analyte and the linear fitting results at (a) and (b) ; (c) influence of the analyte thickness on the FOM values.
Performance of the proposed THz MM sensor with different analyte thicknesses.
| Thickness/μm |
|
|
|
|
|---|---|---|---|---|
| 2 | 188 | 573 | 1.53 | 1.57 |
| 6 | 271 | 823 | 2.20 | 2.25 |
| 10 | 295 | 893 | 2.40 | 2.44 |
| 14 | 290 | 898 | 2.36 | 2.45 |
| 18 | 304 | 912 | 2.47 | 2.49 |
| 22 | 292 | 907 | 2.37 | 2.48 |
Figure 6The frequency shift of the transmission spectra of the various types of edible oil at (a) and (b) .
Analysis results of the transmission spectra for edible oils detection using the proposed dual-band sensor.
| Parameters | Reference Values | Corn Oil | Peanut Oil | Soybean Oil | Canola Oil |
|---|---|---|---|---|---|
|
| 1 | 1.33 | 1.83 | 2.21 | 2.73 |
|
| 1 | 1.153 | 1.353 | 1.486 | 1.652 |
| 0.9568 | 0.9009 | 0.845 | 0.802 | 0.7504 | |
| 2.8832 | 2.7112 | 2.5607 | 2.4489 | 2.2984 | |
| 0 | 0.0559 | 0.1118 | 0.1548 | 0.2064 | |
| 0 | 0.172 | 0.3225 | 0.4343 | 0.5848 | |
| 304 | |||||
| 912 | |||||
|
| 1 | 1.184 | 1.368 | 1.509 | 1.678 |
|
| 1 | 1.189 | 1.354 | 1.476 | 1.641 |