Triple Band-stop Performance Realization Through a Single Substrate Layer Frequency Selective Surface

Main Article Content

V. Nadjari
J. Nourinia
Ch. Ghobadi

Abstract

A single-substrate-layer Frequency Selective Surface (FSS) is designed with a 1.6 mm thick FR4 substrate for triple band-stop frequency filtering applications, that are for Bluetooth, WLAN, WiMAX, and X-band. The proposed FSS unit cell consists of two polygon loops on the front side and a square loop with four annular rings attached to its corners on the backside. The offered design covers three frequency bands: 2.3-4 GHz, 5-6 GHz, and 8-12 GHz. There are three resonances at 3.3 GHz, 5.6 GHz, and 9.9 GHz. The equivalent circuit model of the proposed structure and the formulas of the LC parameters were presented. A prototype of this structure was manufactured in size of 26 cm × 26 cm and experimentally verified in the antenna and microwave laboratory. The software used for design and simulation is HFSS from Ansys, which uses the finite element method. A comparison with similar structures was performed to demonstrate the performance of the proposed structure. The advantages of the proposed filter include adequate bandwidth, simple structure, as well as small size. In addition, it is unaffected by variant angles of incidence for TE polarization and TM polarization. Furthermore, due to its symmetrical design, it shows a polarization-independent feature. Experimental results for both polarizations verify the merits of the proposed approach, as shown before in the simulation results as well.

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How to Cite
Nadjari, V., Nourinia, J., & Ghobadi, C. (2026). Triple Band-stop Performance Realization Through a Single Substrate Layer Frequency Selective Surface. Advanced Electromagnetics, 14(4), 46–52. https://doi.org/10.7716/aem.v14i4.1911
Section
Research Articles

References

K. K. Varikuntla and R. Singarav, “Review on Design of Frequency Selective Surfaces based on Substrate Integrated Waveguide Technology”, AEM, vol. 7, no. 5, pp. 101–110, Nov. 2018.

A. Kapoor, R. Mishra, and P. Kumar, “A Compact High Gain Printed Antenna with Frequency Selective Surface for 5G Wideband Applications”, AEM, vol. 10, no. 2, pp. 27–38, Jul. 2021.

B. Döken & M. Kartal, “Dual-band Frequency Surface Design by Implementing a Simple Design Technique”, IETE Journal of Research, (2019), DOI: 10.1080/03772063.2019.1684848

B. A. Munk “Frequency Selective Surfaces: Theory and Design”. New York, Wiley-Interscience, 2000.

M. Bashiri, Ch. Ghobadi, J. Nourinia, et al., “WiMAX, WLAN, and X-Band Filtering Mechanism: Simple-Structured Triple-Band Frequency Selective Surface”. IEEE Antennas and wireless propagation letters. 2017; vol.16, p. 3245-3248.

M. Majidzadeh, C. Ghobadi, J. Nourinia, “Quadruple filtering mechanism through an effective sketch of reconfigurable frequency selective surface”. Microw. Antennas Propag. 2016; vol. 10, no.16, p. 1605–1612.

M. Majidzadeh, C. Ghobadi, J. Nourinia, “Ultrawideband electromagnetic shielding through a simple single-layer frequency selective surface”. Wireless Pers. Commun. 2017; vol. 95, p. 2769–2783.

X.Xiong, W. Hong, Zh. Zhao, et al., “WiFi band-stop FSS for increased privacy protection in smart building”. 2015 IEEE 6th International Symposium on MAPE, Shanghai. 2015; p. 826-828.

L.M. Araujo, R.H.C. Manicoba, A.L.P.S. Campos, A.G. D’assuncao, “A simple dual‐band frequency selective surface”. Microwave and Opt Technol Lett. 2009; vol. 51, p. 942-944.

C.k.Lee, R.J. Langley, “Performance of a dual-band reflector antenna incorporating a frequency selective subreflector”. Int J Electron 61. 1986; p. 607-616.

J. H Kim., H. J. Chun, et al., “Analysis of FSS radomes based on physical optics method and ray tracing technique”. IEEE Antennas Wireless Propag. Lett. 2014; vol. 13, p. 868-871.

H. B.Baskey, B. Ghai, M. J. Akhtar. “A flexible ultra-thin, frequency selective-surface based absorber film for the radar cross-section reduction of a cubical object”. 2015 IEEE MTT-S International Microwave and RF Conference (IMaRC), Hyderabad. 2015; p. 128-131.

M.R.I. Faruque, M.M. Hasan, et al., “Tree-shaped fractal meta-surface with left-handed characteristics for absorption application”. Applied Physics A. 2018; 124-127. https://doi.org/10.1007/s00339-017-1498-9

A. Kesavan, M. Mantash, T.A. Dendini, “Supershaped reconfigurable frequency selective surfaces using cantilever enable switches”. Microw Opt Technol Lett. 2019; p. 1-3. DOI: 10.1002/mop.31933

BS. DA Silva, ALPS. Campos, N.A. Gomes, “Narrowband shielding against electro-magnetic interference in LTE 4G systems using complementary frequency selective surfaces”. Microw Opt Technol Lett. 2018; vol. 60, p. 2293-2298. https://doi.org/10.1002/mop.31341

S.Can, EU. Karakaya, AE. Yilmaz, “Design, fabrication, and measurement of textile-based frequency selective surfaces”. Microw Opt Technol Lett. 2020; p. 1-7. https://doi.org/10.1002/mop.32474

M.M. Hasan, M.R.I Faruque, T. Islam, “Dual band metamaterial antenna for LTE/Bluetooth/WiMAX system”. Scientific reports. 2018; p. 8:1240. Doi:10.1038/S41598-018-19705-3

Y.Garg, R. Chahar, et al., “A Novel polarization independent triple bandstop Frequency Selective Surface for the mobile and wireless communication”. International Conference on Computing, Communication and Automation (ICCCA), 2017; p. 1518-1521.

H.F.Huang, Sh.F. Zhang, Y.H Hu, “A novel frequency selective surface for ultra-wideband antenna performance improvement”, In Proceedings of the international symposium on antennas & propagation (ISAP). 2013; p. 965–968.

ZU. Abidin, Q. Cao, et al., “Design of a novel miniaturized bandstop frequency selective surface exhibiting polarization insensitivity and enhanced oblique stability”. Int J RF Microw Comput Aided Eng. 2020; e22263. https://doi.org/10.1002/mmce.22263

D. Belmessaoud, K. Roubah, et al.,” Broadband planar slot antenna using a simple single-layer FSS stopband”. IET Microw. Antennas Propag., 2020; vol. 14 Iss. No. 3, p. 203-210. DOI: 10.1049/iet-map.2019.0365

M. Karahan, E. Aksoy, “Design and analysis of angular stable antipodal F-type frequency selective surface with multi-band characteristics”. Int J RF Microw Comput Aided Eng. 2020; e22466. https://doi.org/10.1002/mmce.22466

W. Yu, G.Q. Luo, et al., “Miniaturised band-absorptive frequency selective rasorbers with wide absorption band”. IET Microw. Antennas Propag. 2019; vol. 13 Iss. no.11, p.1777-1781. DOI: 10.1049/iet-map.2018.6170

U. Farooq, A. Iftikhar, et al., “polarization insensitive Penta-bandstop frequency selective surface for closely placed bands”. Microw Opt Technol Lett. 2020; p. 1-8. https://doi.org/10.1002/mop.32571

Y. Jiaao, P. Shirui, et al., “Equivalent circuit model of an ultra-wideband frequency selective surface composite absorbing material”. J. Eng. 2019; vol. 19, p.5922-5926. DOI: 10.1049/joe.2019.0220

A. Ramezani, Z.H. Firuozeh, A. Ebadinezhad “Equivalent circuit model for array of circular loop FSS structures at oblique angles of incidence”. IET Microw. Antennas Propag. 2018; vol. 12, p. 749-755. DOI: 10.1049/iet-map.2017.1004

S. Keyrouz, G. Perotto, H.J. Vvisser “Lumped-Element Tunable Frequency Selective Surfaces”. The 8th European Conference on Antennas and Propagation IEEE. 2014; p.475-478

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