Volume 5 , Issue 2 , PP: 77-83, 2022 | Cite this article as | XML | Html | PDF | Full Length Article
Basma M. Yousef 1 * , Germien G. Sedhom 2 , Alshimaa H. Ismail 3
Doi: https://doi.org/10.54216/IJWAC.050206
A new shape of slot antenna (U-shaped) is introduced in this paper. The proposed antenna is designed for use in mobile phone devices. This structure covers bands ISM/Bluetooth, WLAN, Wi-Fi, WiMAX, 5G applications, cellular communications, weather radar, surface ship radar, and some communications satellites. A U-shaped slot is cut on the ground plane. A coupling feed technique is used to feed the designed antenna. The proposed antenna is printed on a high-loss FR-4 dielectric substrate with . The designed antenna achieves a very wide bandwidth (from 2.3GHz to 6.3GHz). A high gain (around 7dB) is also achieved. The design is simulated using CST software, and the results are verified by HFSS software.
Slot Antennas , ISM/Bluetooth , WLAN , Wi-Fi , WiMAX , Cellular Communication , 5G
[1] Kin-Lu Wong and Pei-Rong Wu, Dual-wideband linear open slot antenna with two open ends for the LTE/WWAN smartphone. Microwave Opt. Technol. Lett., 57(6), 1269-1274, 2015.
[2] S. W. Lee, H. S. Jung, and Y. J. Sung, A Reconfigurable Antenna for LTE/WWAN Mobile Handset Applications. IEEE Antennas and Wireless Propagation Letters, 14, 48-51, 2015.
[3] Yi Chen, Robert Martens, Risto Valkonen, and Dirk Manteuffel, M, Evaluation of adaptive impedance tuning for reducing the form factor of handset antennas. IEEE Trans. Antennas Propag. 63(2), 703-710, 2015.
[4] Manivasagam Srinivasan, Sridevi Annadurai, a Survey Paper on Slot Antenna. International Journal of Trend in Research and Development, 4, September 2018.
[5] K.Leela Rani, K.Sowjanya, M.Sekhar, Sk.Khamuruddeen, Triple Frequency U-Slot Antenna for 5G and Satellite Communications. International Journal of Recent Technology and Engineering, 7, February 2019.
[6] Ammar H. Ali, Issa Elfergani, James M. Noras1, Jonathan Rodriguez,And Raed A. Abd-Alhameed, Naser Ojaroudi Parchin 1, Yasir Ismael Abdulraheem Al-Yasir1, Eight-Element Dual-Polarized MIMO Slot Antenna System for 5G Smartphone Applications. IEEE Access, 2019.
[7] Schaubert, D. H., D. M. Pozar, and A. Adrian, Effect of microstrip antenna substrate thickness and permittivity: Comparison of theories and experiment. IEEE T. Antenn. Propag. 37, 677, 1989.
[8] Tian, C., Y. C. Jiao, G. Zhao and H. Wang, A wideband transmit array using triple-layer elements combined with cross slots and double square rings. IEEE Antenn. Wirel. Pr., 16, 1561, 2017.
[9] Carolina, M. S., A. P. Feresidis, and G. Goussetis, Bandwidth enhancement of 2-D leaky-wave antennas with double-layer periodic surfaces. IEEE T. Antenn. Propag. 62, 586, 2014.
[10] Xu, K. D., D. T. Li, Y. H. Liu, and Q. H. Liu, Printed quasi-yagi antennas using double dipoles and stubloaded technique for multi-band and broadband applications. IEEE Access, 6, 31695, 2018.
[11] Rengasamy, R., D. Dhanasekaran, C. Chakraborty, and S. Ponnan, Modified Murkowski fractal multiband antenna with circular-shaped split-ring resonator for wireless applications. Measurement, 182, 109766, 2021.
[12] Gupta, R. K. and J. Mukherjee, Efficient high gain with low sidelobe level antenna structures using circular array of square parasitic patches on a superstrate layer. Microw. Opt. Technol. Lett., 52, 2812, 2010.
[13] Zhang, X. and L. Zhu, Gain-enhanced patch antennas with loading of shorting pins. IEEE T. Antenn. Propag. 64, 3310, 2016.
[14] Bai, H., G. M.Wang, and X. J. Zou, A wideband and multi-mode metasurface antenna with gain enhancement. AEU — Int. J. Electron. C., 126, 153402, 2020.
[15] Das, S. and S. Sahu, Polarization reconfigurability enabled metamaterial inspired dielectric resonator based Fabry-Perot resonator cavity antenna with high gain and bandwidth. Int. J. RF Microw. C. E., 31, e22603, 2021.
[16] Attia, Hussein, Allam M. Ameen, Abdel Hamid AM Shaalan, and Kamal H. Awadalla. Multislotmultiband monopole antenna for mobile phone applications. In 2014 IEEE Antennas and Propagation Society International Symposium (APSURSI), 1055-1056, 2014.
[17] Cao, Y. F., Y. Cai, W. Q. Cao, B. K. Xi, Z. P. Qian, T. Wu and L. Zhu, Broadband and high-gain microstrip patch antenna loaded with parasitic mushroom-type structure. IEEE Antenn. Wirel. Pr., 18, 1405, 2019.