Purity Detection of Some Liquids by Using Reflection Values Based on Metamaterial

Authors

DOI:

https://doi.org/10.61326/jaasci.v3i1.108

Keywords:

Liquid samples, Metamaterial, Purity, Sensor

Abstract

The aim of this work is to design and fabricate a type of sensor based on Metamaterials. This structure determines the purity of Methanol and Ethanol mixture in the water by using the Octagonal form of a resonator and sample holder. The proposed structure has been employed in the 8-12 GHZ frequency band. The important thing in the work is the changes of the waveform at the resonance frequency. The output waveform of materials (reflection coefficient S11 or transmission coefficient S12) must be changed in the liner figure by considering the dielectric coefficient. We use copper for the metal layer and resonator and Isola IS680 (3.2DK) (lossy) for substrate layer. We simulate one unit cell of this Meta-material sensor by CST microwave software and then achieve the results and evaluate them. Both the numerical and experimental tests, give the same outcomes and results and they will be in good agreement with each other. The proposed structure can be used in many applications where purity and determining of some materials might be necessary.



References

Alitalo, P., Luukkonen, O., Jylhä, L., Venermo, J., & Tretyakov, S. (2007). Transmission-line networks cloaking objects from electromagnetic fields. IEEE Transactions on Antennas and Propagation, 56(2), 416-424. https://doi.org/10.1109/TAP.2007.915469

Alkurt, F. Ö., Bağmacı, M., Karaaslan, M., Bakır, M., Altıntaş, O., Karadag, F., Akgöl, O., & Ünal, E. (2018). Detection behind a wall by using microwave techniques. AIP Conference Proceedings, 1935(1), 060002. https://doi.org/10.1063/1.5025980

Bakır, M. (2017). Electromagnetic-based microfluidic sensor applications. Journal of the Electrochemical Society, 164(9), B488-B494. https://doi.org/10.1149/2.0171712jes

Bakır, M., Karaaslan, M., Unal, E., Karadag, F., Alkurt, F. Ö., Altıntaş, O., Dalgac, S., & Sabah, C. (2018). Microfluidic and fuel adulteration sensing by using chiral metamaterial sensor. Journal of the Electrochemical Society, 165(11), B475-B483. https://doi.org/10.1149/2.0231811jes

Caloz, C., Lai, A., & Itoh, T. (2004). Wave interactions in a left0handed mushroom structure. IEEE Antennas and Propagation Society Symposium. Monterey.

Chieh-Sen, L., & Yang, C. L. (2014). Thickness and permittivity measurement in multi-layered dielectric structures using complementary split-ring resonators. IEEE Sensors Journal, 14(3), 695-700. https://doi.org/10.1109/JSEN.2013.2285918

Pendry, J., Holden, A., Robbins, D., & Stewart, W. (1998). Low frequency plasmons in thin-wire structures. Journal of Physics: Condensed Matter, 10, 4785-4809. https://doi.org/10.1088/0953-8984/10/22/007

Pendry, J. B., Holden, A. J., Robbins, D. J., & Stewart, W. J. (1999). Magnetism from conductors and enhanced nonlinear phenomena. IEEE Transactions on Microwave Theory and Techniques, 47(11), 2075-2084. https://doi.org/10.1109/22.798002

Pozar, M. (2004). Microwave engineering. John Wiley & Sons.

Smith, D. R., Padilla, W. J., Vier, D. C., & Nemat, S. C. (2000). Composite medium with simultaneously negative permeability and permittivity. Physical Review Letters, 84(18), 4184-4187. https://doi.org/10.1103/PhysRevLett.84.4184

Veselago, V. G. (1968). The electrodynamics of substances with simultaneously negative values of ε and μ. Soviet Physics Uspekhi, 10(4), 509-514. https://doi.org/10.1070/PU1968v010n04ABEH003699

Weiland, T. (1977). A discretization model for the solution of maxwell's equations for six-component fields. Electronics and Communications, 31(3),116-120.

Zhu, F., Lin, Q., & Hu, J. (2005). A directive patch antenna with a metamaterial cover. IEEE. Asia-Pacific Microwave Conference Proceedings (APMC). Suzhou.

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Published

06-05-2024

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Research Articles