Review on Millimeter Wave Antenna for Future 5G Device

Authors

  • Kamani Sneha Research Scholar, Department of ECE, Koneru Lakshmaiah Education Foundation, Vaddeswaram, AP, India
  • Vipul Agarwal Associate Professor, Department of ECE, Koneru Lakshmaiah Education Foundation, Vaddeswaram, AP, India

Keywords:

Millimeter-wave, microwave signals, wideband, 5G, blocking, antenna array, communication

Abstract

Millimeter-wave communications have demonstrated a promising future and are considered to be an appealing method in 5G fifth-generation wireless communication systems because of the rapid expansion of wireless data traffic.Moreover, to construct strong communication structures, understanding the channel dynamics in time and space at these frequencies is critical.Millimeter wave signals are particularly susceptible to blocking and because of their low signal attenuation, they have restricted communications abilities when particularly in comparison to microwave signals.Specifically, various designs from current papers are selected depending on their appealing features that assist 5G requirements and applications.In the mm-wave range, a T-shaped antenna can have a broad frequency range, including frequencies in the Ka-band such as 26.5 GHz to 40 GHz.Because ofits several benefits the PET substrate was chosen, including high flexibility,low cost, human body protection, and protection to environmental consequences. This review presents similar other mm-wave antenna array designs, and their strategies and challenges are discussed which are utilized to address the path loss that is unfavorableand mm-wave application blockage problems, which establish future directions.

Downloads

Download data is not yet available.

References

Liu, H.Y. and Huang, C.J., 2019 “Wideband MIMO antenna array design for future mobile devices operating in the 5G NR frequency bands n77/n78/n79 and LTE band 46” IEEE Antennas and Wireless Propagation Letters, 19(1), pp.74-78.

Kiani, S.H., Alharbi, A.G., Khan, S., Marey, M., Mostafa, H. and Khan, M.A., 2022 “Wideband Three Loop Element Antenna Array for Future 5G mm wave Devices” IEEE Access, 10, pp.22472-22479.

Naqvi, S.I., Naqvi, A.H., Arshad, F., Riaz, M.A., Azam, M.A., Khan, M.S., Amin, Y., Loo, J. and Terhune, H., 2019 “An integrated antenna system for 4G and millimeter-wave 5G future handheld devices” IEEE Access, 7, pp.116555-116566.

Park, J., Lee, S.Y., Kim, Y., Lee, J. and Hong, W., 2018, August “Hybrid antenna module concept for 28 GHz 5G beam steering cellular devices” In 2018 IEEE MTT-S International Microwave Workshop Series on 5G Hardware and System Technologies (IMWS-5G) (pp. 1-3). IEEE.

Park, J., Lee, S.Y., Kim, J., Park, D., Choi, W. and Hong, W., 2019 “An optically invisible antenna-on-display concept for millimeter-wave 5G cellular devices” IEEE Transactions on Antennas and Propagation, 67(5), pp.2942-2952.

Khan, J., Sehrai, D.A. and Ali, U., 2019 “Design of dual band 5G antenna array with SAR analysis for future mobile handsets” Journal of Electrical Engineering &Technology, 14(2), pp.809-816.Di Paola, C., Zhao, K., Zhang, S. and Pedersen, G.F., 2019 SIW multibeam antenna array at 30 GHz for 5G mobile devices IEEE Access, 7, pp.73157-73164.

Ikram, M., Al Abbas, E., Nguyen-Trong, N., Sayidmarie, K.H. and Abbosh, A., 2019 “Integrated frequency-reconfigurable slot antenna and connected slot antenna array for 4G and 5G mobile handsets” IEEE Transactions on Antennas and Propagation, 67(12), pp.7225-7233.

He, Y., Lv, S., Zhao, L., Huang, G.L., Chen, X. and Lin, W., 2021 “A compact dual-band and dual-polarized millimeter-wave beam scanning antenna array for 5G mobile terminals” IEEE Access, 9, pp.109042-109052.

Hwang, I.J., Ahn, B., Chae, S.C., Yu, J.W. and Lee, W.W., 2019 “Quasi-Yagi antenna array with modified folded dipole driver for mm Wave 5G cellular devices” IEEE Antennas and Wireless Propagation Letters, 18(5), pp.971-975.

Park, J., Seong, H., Whang, Y.N. and Hong, W., 2019 “Energy-efficient 5G phased arrays incorporating vertically polarized end fire planar folded slot antenna for mm Wave mobile terminals” IEEE Transactions on Antennas and Propagation, 68(1), pp.230-241.

Shen, X., Liu, Y., Zhao, L., Huang, G.L., Shi, X. and Huang, Q., 2019 “A miniaturized microstrip antenna array at 5G millimeter-wave band” IEEE Antennas and Wireless Propagation Letters, 18(8), pp.1671-1675.

Luo, Y., Xu, J., Chen, Y., Sun, Y., Xu, B., Xu, S. and Yang, G., 2019 “A zero-mode induced mm Wave patch antenna with low-profile, wide-bandwidth and large-angle scanning for 5G mobile terminals” IEEE Access, 7, pp.177607-177615.

Zhang, J., Zhang, S., Ying, Z., Morris, A.S. and Pedersen, G.F., 2019 “Radiation-pattern reconfigurable phased array with pin diodes controlled for 5G mobile terminals” IEEE Transactions on Microwave Theory and Techniques, 68(3), pp.1103-1117.

Parchin, N.O., Zhang, J., Abd-Alhameed, R.A., Pedersen, G.F. and Zhang, S., 2021 “A planar dual-polarized phased array with broad bandwidth and quasi-end fire radiation for 5G mobile handsets” IEEE Transactions on Antennas and Propagation, 69(10), pp.6410-6419.

Lee, W.W., Hwang, I.J. and Jang, B., 2020 “End-fire Vivaldi antenna array with wide fan-beam for 5G mobile handsets” IEEE Access, 8, pp.118299-118304.

Xu, B., Ying, Z., Scialacqua, L., Scannavini, A., Fogged, L.J., Bolin, T., Zhao, K., He, S. and Gustafsson, M., 2018 “Radiation performance analysis of 28 GHz antennas integrated in 5G mobile terminal housing” Ieee Access, 6, pp.48088-48101.

Taheri, M.M.S., Abdipour, A., Zhang, S. and Pedersen, G.F., 2019 “Integrated millimeter-wave wideband end-fire 5G beam steerable array and low-frequency 4G LTE antenna in mobile terminals” IEEE Transactions on Vehicular Technology, 68(4), pp.4042-4046.

Mahmoud, K.R. and Montaser, A.M., 2018 “Performance of tri-band multi-polarized array antenna for 5G mobile base station adopting polarization and directivity control” IEEE Access, 6, pp.8682-8694.

Hussain, S., Qu, S.W., Zhou, W.L., Zhang, P. and Yang, S., 2020 “Design and fabrication of wideband dual-polarized dipole array for 5G wireless systems” IEEE Access, 8, pp.65155-65163.

Wang, Z. and Huang, Z., 2020 “A microwave/millimeter wave dual-band shared aperture patch antenna array” IEEE Access, 8, pp.218585-218591.

Parchin, N.O., Al-Yasir, Y.I.A., Ali, A.H., Elfergani, I., Noras, J.M., Rodriguez, J. and Abd-Alhameed, R.A., 2019 “Eight-element dual-polarized MIMO slot antenna system for 5G smartphone applications” IEEE access, 7, pp.15612-15622.

Yang, X., Zhu, N., Xie, N., Hou, M. and Gao, S., 2019, October “Broadband Dual-Polarized Phased Array with Broadside and End fire Radiation for 5G Millimeter Wave Communications” In 2019 Computing, Communications and IoT Applications (ComComAp) (pp. 210-212). IEEE.

Syrytsin, I., Zhang, S., Pedersen, G.F. and Morris, A.S., 2018 “Compact quad-mode planar phased array with wideband for 5G mobile terminals” IEEE Transactions on Antennas and Propagation, 66(9), pp.4648-4657.

Deng, C., Liu, D., Yektakhah, B. and Sarabandi, K., 2020 “Series-fed beam-steerable millimeter-wave antenna design with wide spatial coverage for 5G mobile terminals” IEEE Transactions on Antennas and Propagation, 68(5), pp.3366-3376.

Zhang, J., Zhao, K., Wang, L., Pedersen, G.F. and Zhang, S., 2021 “Wideband Low-Profile Dual-Polarized Phased Array with End fire Radiation Patterns for 5G Mobile Applications” IEEE Transactions on Vehicular Technology, 70(9), pp.8431-8440.

Lee, J.Y., Choi, J., Choi, D., Youn, Y. and Hong, W., 2021 “Broadband and wide-angle scanning capability in low-coupled mm-wave phased-arrays incorporating ILA with HIS fabricated-on FR-4 PCB” IEEE Transactions on Vehicular Technology, 70(3), pp.2076-2088.

Al-Saedi, H., Abdel-Wahab, W.M., Raeis-Zadeh, S.M., Alian, E.H.M., Palizban, A., Ehsandar, A., Ghafarian, N., Chen, G., Boroujeni, S.R., Nezhad-Ahmadi, M.R. and Safavi-Naeini, S., 2019 “An integrated circularly polarized transmitter active phased-array antenna for emerging ka-band satellite mobile terminals” IEEE Transactions on Antennas and Propagation, 67(8), pp.5344-5352.

Nguyen, T.Q.K., Miah, M.S., Lizzi, L., Haneda, K. and Ferrero, F., 2020 “Experimental evaluation of user's finger effects on a 5G terminal antenna array at 26 GHz” IEEE Antennas and Wireless Propagation Letters, 19(6), pp.892-896.

Li, H., Cheng, Y., Mei, L. and Wu, F., 2020 “Dual-polarized frame-integrated slot arrays for 5G mobile handsets” IEEE Antennas and Wireless Propagation Letters, 19(11), pp.1953-1957.

Kamal, S., Ain, M.F.B., Ullah, U., Mohammed, A.S., Najmi, F., Hussin, R., Ahmad, Z.A., Omar, M.F.B.M., Ab Rahman, M.F., Mahmud, M.N. and Othman, M., 2021 “Wheel-shaped miniature assembly of circularly polarized wideband microstrip antenna for 5G mm Wave terminals” Alexandria Engineering Journal, 60(2), pp.2457-2470.

Ikram, M., Nguyen-Trong, N. and Abbosh, A.M., 2020 “Common-aperture sub-6 GHz and millimeter-wave 5G antenna system” IEEE Access, 8, pp.199415-199423.

Tsakyridis, A., Ruggeri, E., Kalfas, G., Oldenbeuving, R.M., van Dijk, P.W., Roeloffzen, C.G., Leiba, Y., Miliou, A., Pleros, N. and Vagionas, C., 2021“Reconfigurable fiber wireless IFoF fronthaul with 60 GHz phased array antenna and silicon photonic ROADM for 5G mm Wave C-RANs” IEEE Journal on Selected Areas in Communications, 39(9), pp.2816-2826.

Mo, J., Ng, B.L., Chang, S., Huang, P., Kulkarni, M.N., Alammouri, A., Zhang, J.C., Lee, J. and Choi, W.J., 2019 “Beam codebook design for 5G mm Wave terminals” IEEE Access, 7, pp.98387-98404.

Lu, R., Yu, C., Zhu, Y. and Hong, W., 2020 “Compact millimeter-wave end fire dual-polarized antenna array for low-cost multibeam applications” IEEE Antennas and Wireless Propagation Letters, 19(12), pp.2526-2530.

Li, H., Cheng, Y. and Ling, Z., 2020 “Design of distributed and robust millimeter-wave antennas for 5G communication terminals” IEEE Access, 8, pp.133420-133429.

Zhao, K., Zhang, S., Ho, Z., Zander, O., Bolin, T., Ying, Z. and Pedersen, G.F., 2018. “Spherical coverage characterization of 5G millimeter wave user equipment with 3GPP specifications” Ieee Access, 7, pp.4442-4452.

Shim, J.Y., Go, J.G. and Chung, J.Y., 2019 “A 1-D tightly coupled dipole array for broadband mm Wave communication” IEEE Access, 7, pp.8258-8265.

Al Abbas, E., Ikram, M., Mosbacher, A.T. and Abbosh, A., 2019 “MIMO antenna system for multi-band millimeter-wave 5G and wideband 4G mobile communications” IEEE Access, 7, pp.181916-181923.

Syrytsin, I., Zhang, S., Pedersen, G.F. and Morris, A.S., 2019 “User-shadowing suppression for 5G mm-wave mobile terminal antennas” IEEE Transactions on Antennas and Propagation, 67(6), pp.4162-4172.

Novak, M.H., Miranda, F.A. and Volakis, J.L., 2018 “Ultra-wideband phased array for millimeter-wave ISM and 5G bands, realized in PCB” IEEE Transactions on Antennas and Propagation, 66(12), pp.6930-6938.

Kim, G. and Kim, S., 2021 “Design and analysis of dual polarized broadband microstrip patch antenna for 5G mm wave antenna module on FR4 substrate” IEEE Access, 9, pp.64306-64316.

Gu, X., Liu, D. and Sadhu, B., 2021 “Packaging and antenna integration for silicon-based millimeter-wave phased arrays: 5G and beyond” IEEE Journal of Microwaves, 1(1), pp.123-134.

Wang, Z. and Huang, Z., 2020 “A microwave/millimeter wave dual-band shared aperture patch antenna array” IEEE Access, 8, pp.218585-218591.

Li, J., Zhang, X., Wang, Z., Chen, X., Chen, J., Li, Y. and Zhang, A., 2019. Dual-band eight-antenna array design for MIMO applications in 5G mobile terminals. IEEE Access, 7, pp.71636-71644.

Huang, J., Dong, G., Cai, J., Li, H. and Liu, G., 2021. A quad-port dual-band MIMO antenna array for 5G smartphone applications. Electronics, 10(5), p.542.

Moreno, R.M., Kurvinen, J., Ala-Laurinaho, J., Khripkov, A., Ilvonen, J., van Wonterghem, J. and Viikari, V., 2020. Dual-polarized mm-wave end fire chain-slot antenna for mobile devices. IEEE Transactions on Antennas and Propagation, 69(1), pp.25-34.

Yang, S.J., Pan, Y.M., Shi, L.Y. and Zhang, X.Y., 2020. Millimeter-wave dual-polarized filtering antenna for 5G application. IEEE Transactions on Antennas and Propagation, 68(7), pp.5114-5121.

Huang, H.C. and Lu, J., 2021. Evolution of innovative 5G millimeter-wave antenna designs integrating non-millimeter-wave antenna functions based on antenna-in-package (AiP) solution to cellular phones. IEEE Access, 9, pp.72516-72523.

If fat Naqvi, S., Hussain, N., Iqbal, A., Rahman, M., Forsat, M., Mirjavadi, S.S. and Amin, Y., 2020. Integrated LTE and millimeter-wave 5G MIMO antenna system for 4G/5G wireless terminals. Sensors, 20(14), p.3926.

Yu, B., Qian, Z., Lin, C., Lin, J., Zhang, Y., Yang, G. and Luo, Y., 2021. A wideband mm Wave antenna in fan-out wafer level packaging with tall vertical interconnects for 5G wireless communication. IEEE Transactions on Antennas and Propagation, 69(10), pp.6906-6911.

Salamin, M.A., Hussain, N. and Le, T.T., 2021. A 2× 1 array‐based wideband mm‐wave antenna integrated with a 2‐element multiple‐input‐multiple‐output antenna for 5G mobile terminals. International Journal of RF and Microwave Computer‐Aided Engineering, 31(8), p.e22709.

Lavdas, S., Gkonis, P.K., Zinonos, Z., Trakadas, P. and Sarakis, L., 2021. An adaptive hybrid beamforming approach for 5G-MIMO mm Wave wireless cellular networks. IEEE Access, 9, pp.127767-127778.

Hussain, R., Abou-Khousa, M., Iqbal, N., Algarni, A., Alhuwaimel, S.I., Zerguine, A. and Sharawi, M.S., 2022. A multiband shared aperture MIMO antenna for millimeter-wave and sub-6GHz 5G applications. Sensors, 22(5), p.1808.

Jang, D., Kong, N.K. and Choo, H., 2021. Design of an on-glass 5G monopole antenna for a vehicle window glass. IEEE Access, 9, pp.152749-152755.

Zhu, Q., Yao, M., Bai, F., Chen, X., Zhong, W., Hua, B. and Ye, X., 2021. A general altitude-dependent path loss model for UAV-to-ground millimeter-wave communications. Frontiers of Information Technology & Electronic Engineering, 22(6), pp.767-776.

M, A. ., M, D. ., M, A. ., M, V. ., I, S. T. ., & P, K. . (2023). COVID -19 Predictions using Transfer Learning based Deep Learning Model with Medical Internet of Things . International Journal on Recent and Innovation Trends in Computing and Communication, 11(3), 43–50. https://doi.org/10.17762/ijritcc.v11i3.6200

Qureshi, D. I. ., & Patil, M. S. S. . (2022). Secure Sensor Node-Based Fusion by Authentication Protocol Using Internet of Things and Rfid. Research Journal of Computer Systems and Engineering, 3(1), 48–55. Retrieved from https://technicaljournals.org/RJCSE/index.php/journal/article/view/41

Downloads

Published

16.07.2023

How to Cite

Sneha , K. ., & Agarwal , V. . (2023). Review on Millimeter Wave Antenna for Future 5G Device. International Journal of Intelligent Systems and Applications in Engineering, 11(3), 56–69. Retrieved from https://ijisae.org/index.php/IJISAE/article/view/3142

Issue

Section

Research Article

Similar Articles

You may also start an advanced similarity search for this article.