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Articles

Investigations on relevance of angular stability and polarization independence of frequency selective reflector in planar antenna gain enhancement

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Pages 969-988 | Received 13 Jan 2023, Accepted 20 Apr 2024, Published online: 12 May 2024

References

  • Yang F, Rahmat-Samii Y. Electromagnetic band gap structures in antenna engineering. Cambridge: Cambridge university press; 2008.
  • Arand AJ. Performance enhancement of microstrip antenna using artificial magnetic conductor reflection phase characteristics. Int J RF Microwave Comput-Aided Eng. 2021;31:1–13. doi:10.1002/mmce.22705
  • Joshi A, Singhal R. Gain enhancement in probe-fed hexagonal ultra wideband antenna using AMC reflector. J Electromagn Waves Appl. 2019;33(9):1185–1196. doi:10.1080/09205071.2019.1605939
  • Kurra L, Abegaonkar MP, Basu A, et al. FSS properties of a uniplanar EBG and its application in directivity enhancement of a microstrip antenna. IEEE Antennas Wirel Propag Lett. 2016;15:1606–1609. doi:10.1109/LAWP.2016.2518299
  • Mohamad S, Cahill R, Fusco V. Performance of archimedean spiral antenna backed by FSS reflector. Electron Lett. 2015;51(1):14–16. doi:10.1049/el.2014.3693
  • Liu N, Sheng X, Zhang C, et al. Design and synthesis of band-pass frequency selective surface with wideband rejection and fast roll-off characteristics for radome applications. IEEE Trans Antennas Propag. 2020;68(4):2975–2983. doi:10.1109/TAP.2019.2955665
  • Mosallaei H, Sarabandi K. Antenna miniaturization and bandwidth enhancement using a reactive impedance substrate. Contract. 2004;52(9):2403–2414.
  • Mohamadi Monavar F, Komjani N. Bandwidth enhancement of microstrip patch antenna using Jerusalem cross-shaped frequency selective surfaces by invasive weed optimization approach. Prog Electromagn Res. 2011;121(October):103–120. doi:10.2528/PIER11051305
  • Verma HK, Kumar M, Meena RS, et al. A low RCS wideband high gain CP slot antenna loaded with frequency selective surface. J Electromagn Waves Appl. 2020;34(7):940–959. doi:10.1080/09205071.2020.1761459
  • Kumar R, Praveen Kumar AV. A rectangular slot antenna with perfectly conducting superstrate and reflector sheets for superior radiation in the 6–9 GHz band. Int J Microw Wireless Technol. 2020;12(10):1039–1046. doi:10.1017/S1759078720000355
  • Cavity R, With A, Radiations I. Theory of controlled aperture field for advanced superstrate design of a resonance cavity antenna with improved radiations properties. IEEE Trans Antennas Propag. 2017;65(3):1399–1403.
  • Zeb BA, Hashmi RM, Esselle KP. Wideband gain enhancement of slot antenna using one unprinted dielectric superstrate. Electron Lett. 2015;51(15):1146–1148. doi:10.1049/el.2015.0932
  • Zeb BA, Ge Y, Esselle KP, et al. A simple dual-band electromagnetic band gap resonator antenna based on inverted reflection phase gradient. IEEE Trans Antennas Propag. 2012;60(10):4522–4529. doi:10.1109/TAP.2012.2207331
  • Munk BA. Frequency selective surfaces: theory and design. New York: John Wiley & Sons; 2005.
  • Bhattacharya A, Dasgupta B, Jyoti R. Design and analysis of ultrathinX-bandfrequency selective surface structure for gain enhancement of hybrid antenna. Int J RF Microw Comput Eng. 2021;31(2):1–12. doi:10.1002/mmce.22505
  • Ferreira D, Caldeirinha RFS, Cuinas I, et al. Square loop and slot frequency selective surfaces study for equivalent circuit model optimization. IEEE Trans Antennas Propag. 2015;63(9):3947–3955. doi:10.1109/TAP.2015.2444420
  • Dewani AA, O’Keefe SG, Thiel DV, et al. Optically transparent frequency selective surfaces on flexible thin plastic substrates. AIP Adv. 2015;5(2):1–9. doi:10.1063/1.4907929
  • De Oliveira MRT, De Melo MT, Llamas-Garro I, et al. Reconfigurable cross dipole: hash frequency selective surface. IET Microwaves Antennas Propag. 2018;12(2):224–229. doi:10.1049/iet-map.2017.0544
  • Santos EP, Filgueira JDB, Campos ALPS, et al. Optimization of frequency selective surfaces with crossed dipoles using the Taguchi’s method. J Microwaves Optoelectron Electromagn Appl. 2017;16(2):371–384. doi:10.1590/2179-10742017v16i2783
  • Langley RJ, Drinkwater AJ. Improved empirical model for the Jerusalem cross. IEE Proc H Microwaves Opt Antennas. 1982;129(1):1–6. doi:10.1049/ip-h-1.1982.0001
  • Abbasi S, Nourinia J, Ghobadi C, et al. A sub-wavelength polarization sensitive band-stop FSS with wide angular response for X- and Ku-bands. AEU – Int J Electron Commun. 2018;89:85–91. doi:10.1016/j.aeue.2018.03.018
  • Chatterjee A, Parui SK. A triple-layer dual-bandpass frequency selective surface of third order response with equivalent circuit analysis. Int J RF Microw Comput Eng. 2020;30(2):1–7. doi:10.1002/mmce.22047
  • Jindal P, Yadav A, Sharma SK. Dual stop band frequency selective surface for C and WLAN band applications. AEU – Int J Electron Commun. 2018;97:267–272. doi:10.1016/j.aeue.2018.10.016
  • Clendinning S, Cahill R, Zelenchuk D, et al. Single screen cross slot polarization convertors with enhanced bandwidth and frequency selective filtering performance. J Electromagn Waves Appl. 2021;35(11):1420–1432. doi:10.1080/09205071.2021.1893832
  • Mollaei MSM. Narrowband configurable polarization rotator using frequency selective surface based on circular substrate-integrated waveguide cavity. IEEE Antennas Wireless Propag Lett. 2017;16(c):1923–1926. doi:10.1109/LAWP.2017.2688703
  • Wang H, Zheng L, Yan M, et al. Design and analysis of miniaturized Low profile and second-order multi-band polarization selective surface for multipath communication application. IEEE Access. 2019;7:13455–13467. doi:10.1109/ACCESS.2019.2894013
  • Ericsson A, et al. A contoured-beam reflector satellite antenna using two doubly curved circular polarization selective surfaces. IEEE Trans Antennas Propag. 2021;69(2):658–671. doi:10.1109/TAP.2020.3026477
  • Birwal A, Singh S, Kanaujia BK. A novel design of ultra-wide stop-band single-layer frequency selective surface using square-loop and cross. Int J Microw Wireless Technol. 2021;13(8):800–809. doi:10.1017/S1759078720001464
  • Das P, Mandal K. Modelling of ultra-wide stop-band frequency-selective surface to enhance the gain of a UWB antenna. IET Microwaves Antennas Propag. 2019;13(3):269–277. doi:10.1049/iet-map.2018.5426
  • Kiani GI, Ford KL, Esselle KP, et al. Oblique incidence performance of a novel frequency selective surface absorber. IEEE Trans Antennas Propag. 2007;55(10):2931–2934. doi:10.1109/TAP.2007.905980
  • Ghosh S, Srivastava KV. Broadband polarization-insensitive tunable frequency selective surface for wideband shielding. IEEE Trans Electromagn Compat. 2018;60(1):166–172. doi:10.1109/TEMC.2017.2706359
  • Kanth VK, Raghavan S. EM design and analysis of frequency selective surface based on substrate-integrated waveguide technology for airborne radome application. IEEE Trans Microw Theory Tech. 2019;67(5):1727–1739. doi:10.1109/TMTT.2019.2905196
  • Sambhav S, Ghosh J, Singh AK. Ultra-wideband polarization insensitive thin absorber based on resistive concentric circular rings. IEEE Trans Electromagn Compat. 2021;63:1333–1340. doi:10.1109/TEMC.2021.3058583
  • Verma AK, Singhal R. Planar X-band reflecting surfaces based on rhombic loop pair. In 2022 IEEE microwaves, antennas, and propagation conference (MAPCON). 2022: 1490–1494. doi:10.1109/MAPCON56011.2022.10046741
  • Metri PG. Theoretical study of equilateral triangular microstrip antenna and its arrays. In Engineering mathematics I. Switzerland: Springer International Publishing; 2016. p. 65–78.
  • Lee CH, Chen SY, Hsu P. Isosceles triangular slot antenna for broadband dual polarization applications. IEEE Trans Antennas Propag. 2009;57(10 PART 2):3347–3351. doi:10.1109/TAP.2009.2029398
  • Li X, Jiao Y-C, Zhang L. Wideband low-profile CPW-fed slot-loop antenna using an artificial magnetic conductor. Electron Lett. 2018;54(11):673–674. doi:10.1049/el.2018.0456
  • Kumar A, De A, Jain RK. Gain enhancement using modified circular loop FSS loaded with slot antenna for sub-6 GHz 5g application. Prog Electromagn Res Lett. 2021;98:41–48. doi:10.2528/PIERL21031108
  • Kundu S, Chatterjee A. A new compact ultra-wideband frequency selective surface with angular stability and polarization independence for antenna radiation enhancement in microwave imaging application. AEUE – Int J Electron Commun. 2022;155:154351, doi:10.1016/j.aeue.2022.154351

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