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    Academic Journal

    Contributors: The study was carried out within the framework of the state assignment No. 075-01438-22-07 of 28.10.2022 (FSEE-2022-0019)., Исследование выполнено в рамках Государственного задания № 075-01438-22-07 от 28.10.2022 г. (FSEE-2022-0019).

    Source: Journal of the Russian Universities. Radioelectronics; Том 26, № 6 (2023); 16-26 ; Известия высших учебных заведений России. Радиоэлектроника; Том 26, № 6 (2023); 16-26 ; 2658-4794 ; 1993-8985

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    Relation: https://re.eltech.ru/jour/article/view/814/728; Wideband high gain fractal antenna for wireless applications / A. Desai, T. Upadhyaya, R. Petel, S. Bhatt, P. Mankodi // Progress in Electromagnetics Research Let. 2018. Vol. 74. P. 125–130. doi:10.2528/PIERL18011504; Elsheakh D. M., Nermeen A. E., Esmat A. A. Ultra wide bandwidth high gain Vivaldi antenna for wireless communications // Progress in Electromagnetics Research Let. 2017. Vol. 69. P. 105–111. doi:10.2528/PIERL17060507; Marno V. R., Odendaal J. W., Joubert J. J. High-gain directional antenna for WLAN and WiMAX applications // IEEE Antennas and Wireless Propagation Let. 2016. Vol. 16. P. 286–289. doi:10.1109/LAWP.2016.2573594; Marno V. R., Odendaal J. W., Joubert J. J. Compact low-cross-polarization horn antennas with serpentine-shaped taper // IEEE Trans. Antennas Propag. 2004. Vol. 52, no. 10. P. 2510–2516. doi:10.1109/TAP.2004.834423; Mohammad N., Faisal M. A. Design, simulation and analysis of a high gain small size array antenna for 5G wireless communication // Wireless Personal Communications. 2021. Vol. 116. P. 2761–2776. doi:10.1007/s11277-020-07819-9; Platonov R. A., Altynnikov A. A., Kozyrev A. B. A Tunable Beamforming Ferroelectric Lens for Millimeter Wavelength Ranges // Coatings. 2020. Vol. 10, no. 2. P. 180. doi:10.3390/coatings10020180; Wideband High-Gain Double-Sided Dielectric Lens Integrated with a Dual-Bowtie Antenna / G. H. Lee, S. Kumar, H. C. Choi, K. W. Kim // IEEE Antennas Wireless Propag. Let. 2021. Vol. 20. P. 293–297. doi:10.1109/LAWP.2020.3048165; Konstantinidis K., Feresidis A., Hall P. Dual‐slot feeding technique for broadband Fabry–Perot cavity antennas // IET Microwaves, Antennas & Propagation, 2015. Vol. 9, iss. 9. P. 861–866. doi:10.1049/ietmap.2014.0530; Ultra-Wideband and High Gain Fabry-Perot Cavity Antenna Using Frequency Selective Surface and Parasitic Patch / Z. Li, J. Ma, B. Shi, L. Peng // 12th Intern. Symp. on Antennas Propagation and EM Theory (ISAPE). Hangzhou, China, 3 Dec. 2018. Hangzhou Dianzi University, 2018. P. 1–3. doi:10.1109/ISAPE.2018.8634123; A compact wideband circular polarized Fabry-Perot antenna using resonance structure of thin dielectric slabs / Nguyen-Trong Nghia, Huy Hung Tran, Truong Khang Nguyen, Amin M. Abbosh // IEEE Access. 2018. Vol. 6. P. 56333–56339. doi:10.1109/ACCESS.2018.2872571; A Frequency Reconfigurable Fabry-Perot Cavity Antenna / L. Ji, Z. Pei, L. Zhang, J. Li // IEEE Intern. Symp. on Antennas and Propagation and North American Radio Science Meeting, Montreal, Canada, 5 July 2020. IEEE, 2020. P. 337–338. doi:10.1109/IEEECONF35879.2020.9330231; High Gain and Wide Bandwidth Fabry-Perot Frequency-Reconfigurable Antenna for Multiple LTE Radio Wireless Communication / T. K. Nguyen, M. T. Phan, R. Borowiec, A. Narbudowicz // IEEE Ninth Intern. Conf. on Communications and Electronics (ICCE), Phu Quoc Island, Vietnam, 13 Jan. 2021. IEEE, 2020. P. 260–264. doi:10.1109/ICCE55644.2022.9852085; Characterization of the properties of barium–strontium titanate films and controlled elements based on them in the frequency range of 1–60 GHz / A. G. Altynnikov, A. G. Gagarin, A. V. Tumarkin, I. V. Kotel’nikov // Technical Physics Let. 2019. Vol. 45. P. 540–543. doi:10.1134/S1063785019060026; Исследование свойств композитного материала для СВЧ-применений на основе PTFE с различной концентрацией и размером частиц керамического наполнителя / А. Б. Козырев, А. Е. Комлев, А. М. Сосунов, А. Г. Алтынников, Р. А. Платонов // J. of the Russian Universities. Radioelectronics. 2023. Т. 26, № 2. С. 16–24. doi:10.32603/1993-8985-2023-26-2-16-24; Nader B., Sarabandi K. A varactor-tuned dual-band slot antenna // IEEE Transactions on Antennas and Propagation. 2006. Vol. 54, no. 2. P. 401–408. doi:10.1109/TAP.2005.863373; Latif S. I., Shafai L., Sharma S. K. Bandwidth enhancement and size reduction of microstrip slot antennas // IEEE Trans. Antennas Propag. 2005. Vol. 53. P. 994–1003. doi:10.1109/TAP.2004.842674; https://re.eltech.ru/jour/article/view/814

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    Academic Journal

    Source: Visnyk of Vinnytsia Politechnical Institute; No. 2 (2021); 126-135 ; Вестник Винницкого политехнического института; № 2 (2021); 126-135 ; Вісник Вінницького політехнічного інституту; № 2 (2021); 126-135 ; 1997-9274 ; 1997-9266 ; 10.31649/1997-9266-2021-155-2

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