A New Miniaturized Double Stop-band Frequency Selective Surface
DOI:
https://doi.org/10.13052/2024.ACES.J.390102Keywords:
Double stop-band, frequency selective surface (FSS), miniaturization, wireless local area network (WLAN)Abstract
A miniaturized double stop-band FSS for WLAN was proposed based on the structure of a ring patch with internal branches and a cross zigzag loaded line. This construction is obtained by using the multilayer connection method to paint the two layers of the patch that we designed on the top and bottom of the dielectric substrate to simulate the designed construction by using HFSS simulation. Analyzing the frequency response characteristics of the FSS indicates that the construction can generate two transmission band gaps at 1.92-2.17 GHz and 4.94-5.99 GHz in the WLAN wave. This construction has stronger polarization stability and angle stability when the incident electromagnetic wave is 0-60∘. It also has a simple construction, small size, and significant engineering applicationvalue.
Downloads
References
Y. Li, P. Ren, Z. Xiang, and B Xu, “Design of dual-stopband FSS with tightly spaced frequency response characteristics,” IEEE Microwave and Wireless Components Letters, vol. 32, no. 8, pp. 1011-1014, Apr. 2022.
X.-J. Sheng, J.-J. Fan, N. Liu, and C.-B. Zhang, “A miniaturized dual-band FSS with controllable frequency resonances,” IEEE Microw. Wireless Compon. Lett, vol. 27, no. 10, pp. 915-917, Oct. 2017.
S. Dey, “Conformal miniaturized angular stable triband frequency selective surface for EMI shielding,” IEEE Transactions on Electromagnetic Compatibility, vol. 64, no. 4, pp. 1031-1041, Mar. 2022.
X. Zhou, B. Yuan, S. Chen, and G. Wang, “A novel design of a compact frequency-selective surface with high selectivity and angular stability,” IEEE Microwave and Wireless Components Letters, vol. 32, no. 7, pp. 931-934, Mar. 2022.
P. Jiang, W. Jiang, W. Hu, and S. Gong, “An interlaced grid dual-band dual-polarized bandpass FSS with a large band ratio,” IEEE Antennas and Wireless Propagation Letters, vol. 21, no. 5, pp. 1027-1031, Mar. 2022.
L. Zhao, X. Liang, Z.-M. Chen, Y. Lee, S. Zhang, H. Ma, and X. Shen, “An ultraminiaturized dual-stopband frequency selective surface for ultra high frequency,” IEEE Access, vol. 8, pp. 44830-44835, Mar. 2020.
G. D. Catton, H. G. Espinosa, A. A. Dewani, and S. G. O’Keefe, “Miniature convoluted FSS for gain enhancement of a multiband antenna,” IEEE Access, vol. 9, pp. 36898-36907, Feb. 2021.
A. J. A. Al Gburi, I. B. M. Ibrahim, M. Y. Zeain, and Z. Zakaria, “Compact size and high gain of CPW-fed UWB strawberry artistic shaped printed monopole antennas using FSS single layer reflector,” IEEE Access, vol. 8, pp. 92697-92707, May 2020.
N. Liu, X. Sheng, C. Zhang, and D. Guo, “Design of frequency selective surface structure with high angular stability for radome application,” IEEE Antennas and Wireless Propagation Letters, vol. 17, no. 1, pp. 138-141, Jan. 2018.
H. Huang and Z. Shen, “Low-RCS reflectarray with phase controllable absorptive frequency-selective reflector,” IEEE Transactions on Antennas and Propagation, vol. 67, no. 1, pp. 190-198, Jan. 2019.
M. Koohestani, R. Perdriau, M. Ramdani, and J. Carlsson, “Frequency selective surfaces for electromagnetic shielding of pocket-sized transceivers,” IEEE Transactions on Electromagnetic Compatibility, vol. 62, no. 6, pp. 2785-2792, Dec. 2020.
S. Narayan, G. Gulati, B. Sangeetha, and R. U. Nair, “Novel metamaterial-element-based FSS for airborne radome applications,” IEEE Trans. Antennas Propag, vol. 66, no. 9, pp. 4695-4707, Sep. 2018.
B. Gao, S. Huang, Z. Ren, Y. Chen, and X. Wang, “Design and verification of an integrated free-standing thick-screen FSS radome,” IEEE Antennas and Wireless Propagation Letters, vol. 17, no. 9, pp. 1630-1634, Sep. 2018.
J. Jiao, N. Xu, and J. Gao, “Complementary frequency selective surface with polarization selective responses,” Applied Computational Electromagnetics Society (ACES) Journal, vol. 37, no. 4, pp. 382-387, Apr. 2022.
R. Mittra, C. H. Chan, and T. Cwik, “Techniques for analyzing frequency selective surfaces-A review,” Proceedings of the IEEE, vol. 76, no. 12, pp. 1593-1615, Dec. 1988.
F. Hopkinson and D. Rittenhouse, “An optical problem, proposed by Mr. Hopkinson, and solved by Mr. Rittenhouse,” Trans. Amer. Phil. Soc, vol. 2, pp. 201-206, 1786.
B. Munk, R. Kouyoumjian, and L. Peters, “Reflection properties of periodic surfaces of loaded dipoles,” IEEE Transactions on Antennas and Propagation, vol. 19, no. 5, pp. 612-617, Sep. 1971.
M. Yan, J. Wang, H. Ma, M. Feng, Y. Pang, S. Qu, J. Zhang, and L. Zheng, “A tri-band, highly selective, bandpass FSS using cascaded multilayer loop arrays,” IEEE Transactions on Antennas and Propagation, vol. 64, no. 5, pp. 2046-2049, May 2016.
S. Vegesna, Y. Zhu, A. Bernussi, and M. Saed, “Terahertz two-layer frequency selective surfaces with improved transmission characteristics,” IEEE Transactions on Terahertz Science and Technology, vol. 2, no. 4, pp. 441-448, July 2012.
M. Gao, S. M. A. Momeni Hasan Abadi, and N. Behdad, “A dual-band, inductively coupled miniaturized-element frequency selective surface with higher order bandpass response,” IEEE Transactions on Antennas and Propagation, vol. 64, no. 8, pp. 3729-3734, Aug. 2016.
W. Wan, Y. Li, H. Wang, Y. Cheng, Z. Zhu, H. Chen, W. Wang, L. Zheng, J. Wang, and S. Qu, “Composite frequency selective structure with the integrated functionality of transmission, absorption, and scattering,” IEEE Antennas and Wireless Propagation Letters, vol. 20, no. 9, pp. 1819-1823, Sep. 2021.
Y. Ma, X. Zhang, S. Wu, Y. Yuan, and N. Yuan, “A hybrid 2-d-3-d miniaturized multiorder wide bandpass FSS,” IEEE Antennas and Wireless Propagation Letters, vol. 21, no. 2, pp. 307-311, Feb.2022.
L. Murugasamy and R. Sivasamy, “A novel fractal inspired iterated four-legged loaded loop elements based 2.5-D miniaturized frequency selective surface,” IEEE Transactions on Electromagnetic Compatibility, vol. 63, no. 6, pp. 2164-2167, Dec.2021.
V. Chaudhary and R. Panwar, “Neural network topology-based terahertz absorber using fractal frequency selective surface,” IEEE Sensors Journal, vol. 21, no. 21, pp. 24028-24037, Sep. 2021.
M. Majidzadeh, C. Ghobadi, and J. Nourinia, “Novel single layer reconfigurable frequency selective surface with UWB and multi-band modes of operation,” AEU-International Journal of Electronics and Communications, vol. 70, no. 2, pp. 151-161, Feb. 2015.
M. Gao, S. M. A. Momeni Hasan Abadi, and N. Behdad, “A dual-band, inductively coupled miniaturized-element frequency selective surface with higher order bandpass response,” IEEE Transactions on Antennas and Propagation, vol. 64, no. 8, pp. 3729-3734, Aug. 2016.
A. K. Palange, A. Sonker, and S. S. Yadav, “Designing of multiband frequency selective surfaces,” in 2016 International Conference on Communication and Signal Processing (ICCSP), Melmaruvathur, India, pp. 0491-0494, Apr.2016.
S. U. Rahman, H. Deng, and M. Sajjad, “Angularly stable frequency selective surface for the gain enhancement of isolated multiple input multiple output antenna,” Microwave and Optical Technology Letters, vol. 63, no. 11, pp. 2803-2810, Mar.2021.
Z. Yu and W. Tang, “A third-order bandpass three-dimensional frequency selective surface with multiple transmission zeros,” Applied Computational Electromagnetics Society (ACES) Journal, vol. 35, no. 12, pp. 1548-1555, Dec. 2020.