Araştırma Makalesi

Liquid Sensor Based on Interaction between Decoupled Waveguides and a Cavity with Transverse Offset in a Phononic Crystal

Sayı: 41 30 Kasım 2022
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Liquid Sensor Based on Interaction between Decoupled Waveguides and a Cavity with Transverse Offset in a Phononic Crystal

Öz

A liquid sensor employing a cavity in the form of a point defect with a transverse offset along the normal bisector of a barrier at the center of a linear waveguide in a two-dimensional phononic crystal, which gives rise to two decoupled waveguides, is proposed. The phononic crystal consists of cylindrical steel rods with 2.0 mm radius in water, arranged with 4.2 mm lattice constant in the square lattice. Linear waveguides are formed by removing a single row from the phononic crystal, whereas the point defect is formed by substituting a single cylindrical steel rod by a polyethylene tubing comprising the analyte of interest. The cavity acts as a cross-bridge between the waveguides through the interaction of the linear defect mode in the input waveguide with the point defect mode, which in turn interacts with the output waveguide mode. Finite-element method simulations reveal that at frequencies around 200 kHz, a sharp peak with a quality factor of the order of 1000 occurs in the transmission spectrum of the system, where resonant transmission occurs. In case of determining the ratio of methanol in ethanol as an instance, it is found that the peak frequency exhibits a quadratic shift with the molar ratio of methanol. On the other hand, the transmission value decreases exponentially with increasing methanol ratio at the frequency of 196.19 kHz, which is the peak frequency for pure ethanol. The proposed sensing scheme can be utilized in many applications such as the identification of fake beverages and in high-throughput concentration measurements in the industry.

Anahtar Kelimeler

Destekleyen Kurum

Türkiye Bilimsel ve Teknolojik Araştırma Kurumu (TÜBİTAK)

Proje Numarası

116F085

Teşekkür

This work is supported by the Scientific and Technological Research Council of Turkey (TÜBİTAK) under grant number: 116F085. Ahmet Cicek acknowledges support from Turkish Academy of Sciences (TÜBA) Outstanding Young Researchers Awarding Programme (GEBİP-2018).

Kaynakça

  1. Aly, A. H., & Mehaney, A. (2017). Phononic crystals with one-dimensional defect as sensor materials. Indian Journal of Physics, 91(9), 1021-1028. https://doi.org/10.1007/s12648-017-0989-z
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  3. Biçer, A., Durmuslar, A. S., Korozlu, N., & Cicek, A. (2022). An Acoustic Add-Drop Filter in a Phononic Crystal for High-Sensitivity Detection of Methanol in Ethanol in the Liquid Phase. IEEE Sensors Journal, 22(15), 14799-14805. https://doi.org/10.1109/JSEN.2022.3185926
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  5. COMSOL, Inc. (2022). COMSOL-Software for Multiphysics Simulation. Retrieved 30.09.2022 from https://www.comsol.com
  6. Givoli, D., & Neta, B. (2003). High-order non-reflecting boundary scheme for time-dependent waves. Journal of Computational Physics, 186(1), 24-46. https://doi.org/10. 1016/S0021-9991(03)00005-6
  7. Iglesias, M., Orge, B., Domínguez, M., & Tojo, J. (1998). Mixing properties of the binary mixtures of acetone, methanol, ethanol, and 2-butanone at 298.15 K. Physics and Chemistry of Liquids, 37(1), 9-29. https://doi.org/10.1080/00319109808032796
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Ayrıntılar

Birincil Dil

İngilizce

Konular

Mühendislik

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

30 Kasım 2022

Gönderilme Tarihi

3 Ekim 2022

Kabul Tarihi

9 Kasım 2022

Yayımlandığı Sayı

Yıl 2022 Sayı: 41

Kaynak Göster

APA
Körözlü, N., Günay, M., Biçer, A., & Çiçek, A. (2022). Liquid Sensor Based on Interaction between Decoupled Waveguides and a Cavity with Transverse Offset in a Phononic Crystal. Avrupa Bilim ve Teknoloji Dergisi, 41, 393-399. https://doi.org/10.31590/ejosat.1183694
AMA
1.Körözlü N, Günay M, Biçer A, Çiçek A. Liquid Sensor Based on Interaction between Decoupled Waveguides and a Cavity with Transverse Offset in a Phononic Crystal. EJOSAT. 2022;(41):393-399. doi:10.31590/ejosat.1183694
Chicago
Körözlü, Nurettin, Mehmet Günay, Ahmet Biçer, ve Ahmet Çiçek. 2022. “Liquid Sensor Based on Interaction between Decoupled Waveguides and a Cavity with Transverse Offset in a Phononic Crystal”. Avrupa Bilim ve Teknoloji Dergisi, sy 41: 393-99. https://doi.org/10.31590/ejosat.1183694.
EndNote
Körözlü N, Günay M, Biçer A, Çiçek A (01 Kasım 2022) Liquid Sensor Based on Interaction between Decoupled Waveguides and a Cavity with Transverse Offset in a Phononic Crystal. Avrupa Bilim ve Teknoloji Dergisi 41 393–399.
IEEE
[1]N. Körözlü, M. Günay, A. Biçer, ve A. Çiçek, “Liquid Sensor Based on Interaction between Decoupled Waveguides and a Cavity with Transverse Offset in a Phononic Crystal”, EJOSAT, sy 41, ss. 393–399, Kas. 2022, doi: 10.31590/ejosat.1183694.
ISNAD
Körözlü, Nurettin - Günay, Mehmet - Biçer, Ahmet - Çiçek, Ahmet. “Liquid Sensor Based on Interaction between Decoupled Waveguides and a Cavity with Transverse Offset in a Phononic Crystal”. Avrupa Bilim ve Teknoloji Dergisi. 41 (01 Kasım 2022): 393-399. https://doi.org/10.31590/ejosat.1183694.
JAMA
1.Körözlü N, Günay M, Biçer A, Çiçek A. Liquid Sensor Based on Interaction between Decoupled Waveguides and a Cavity with Transverse Offset in a Phononic Crystal. EJOSAT. 2022;:393–399.
MLA
Körözlü, Nurettin, vd. “Liquid Sensor Based on Interaction between Decoupled Waveguides and a Cavity with Transverse Offset in a Phononic Crystal”. Avrupa Bilim ve Teknoloji Dergisi, sy 41, Kasım 2022, ss. 393-9, doi:10.31590/ejosat.1183694.
Vancouver
1.Nurettin Körözlü, Mehmet Günay, Ahmet Biçer, Ahmet Çiçek. Liquid Sensor Based on Interaction between Decoupled Waveguides and a Cavity with Transverse Offset in a Phononic Crystal. EJOSAT. 01 Kasım 2022;(41):393-9. doi:10.31590/ejosat.1183694