Design and Performance Comparison of Metamaterial Based Antenna for 4G/5G Mobile Devices
Commenced in January 2007
Frequency: Monthly
Edition: International
Paper Count: 32807
Design and Performance Comparison of Metamaterial Based Antenna for 4G/5G Mobile Devices

Authors: Jalal Khan, Daniyal Ali Sehrai, Shakeel Ahmad

Abstract:

This paper presents the design and performance evaluation of multiband metamaterial based antenna operating in the 3.6 GHz (4G), 14.33 GHz, and 28.86 GHz (5G) frequency bands, for future mobile and handheld devices. The radiating element of the proposed design is made up of a conductive material supported by a 1.524 mm thicker Rogers-4003 substrate, having a relative dielectric constant and loss tangent of 3.55 and 0.0027, respectively. The substrate is backed by truncated ground plane. The future mobile communication system is based on higher frequencies, which are highly affected by the atmospheric conditions. Therefore, to overcome the path loss problem, essential enhancements and improvements must be made in the overall performance of the antenna. The traditional ground plane does not provide the in-phase reflection and surface wave suppression due to which side and back lobes are produced. This will affect the antenna performance in terms of gain and efficiency. To enhance the overall performance of the antenna, a metamaterial acting as a high impedance surface (HIS) is used as a reflector in the proposed design. The simulated gain of the metamaterial based antenna is enhanced from {2.76-6.47, 4.83-6.71 and 7.52-7.73} dB at 3.6, 14.33 and 28.89 GHz, respectively relative to the gain of the antenna backed by a traditional ground plane. The proposed antenna radiated efficiently with a radiated efficiency (>85 %) in all the three frequency bands with and without metamaterial surface. The total volume of the antenna is (L x W x h=45 x 40 x 1.524) mm3. The antenna can be potentially used for wireless handheld devices and mobile terminal. All the simulations have been performed using the Computer Simulation Technology (CST) software.

Keywords: Multiband, fourth generation (4G), fifth generation (5G), metamaterial, CST MWS.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1316786

Procedia APA BibTeX Chicago EndNote Harvard JSON MLA RIS XML ISO 690 PDF Downloads 1816

References:


[1] A. S. S. Neto, A. L. T. Oliveira, S. B. Espinola, J. R. F Melo, J. L. Silva, and H. C. C. Fernandes, “Dual Band Patch Antenna for 5G Applications with EBG Structure in the Ground Plane and Substrate,” Recent Advances in Information Systems and Technologies. WorldCIST. Advances in Intelligent Systems and Computing, Springer, Cham, vol. 570, pp. 1044–1049, 2017.
[2] U. Rafique, H. Khalil, and S. U. Rehman, “Dual-band microstrip patch antenna array for 5G mobile communications,” Progress in Electromagnetics Research Symposium - Fall (PIERS - FALL), pp. 55–59, 2017.
[3] Z. Pi, F. Khan, “An introduction to millimeter-wave mobile broadband systems,” IEEE Communications Magazine, vol. 49, no. 6, pp. 101–107, June 2011.
[4] S. F. Jilani, S. M. Abbas, K. P. Esselle, and A. Alomainy, “Millimeter-Wave Frequency Reconfigurable T-shaped Antenna for 5G Networks,” IEEE 11th International Conference on Wireless and Mobile Computing, Networking and Communications (WiMob), pp. 100–102, 2015.
[5] S. K. Goudos, A. Tsiflikiotis, D. Babas, K. Siakavara, C. Kalialakis, and G. K. Karagiannidis, “Evolutionary Design of a Dual Band E-shaped Patch Antenna for 5G Mobile Communications,” IEEE 6th International Conference on Modern Circuits and Systems Technologies (MOCAST), pp. 1–4, 2017.
[6] A. I. Sulyman, A. Alwarafy, G. R. MacCartney Jr., T. S. Rappaport, and A. Alsanie, “Directional Radio Propagation Path Loss Models for Millimeter-Wave Wireless Networks in the 28, 60, and 73 GHz Bands,” IEEE Transactions on Wireless Communications, vol. 15, no. 10, pp. 6939–6947, 2016.
[7] O. Haraz, M. M. Ali, A. Elboushi, and A. R. Sebak, “Four-Element Dual-Band Printed Slot Antenna Array for the Future 5G Mobile Communication Networks,” IEEE International Symposium on Antennas and Propagation & USNC/URSI National Radio Science Meeting, pp. 1–2, 2015.
[8] W. Chang, C. Yang, C. Chang, W. Liao, L. Cho, and W. Chen, “Pattern Reconfigurable Millimeter-Wave Antenna Design for 5G Handset Applications,” IEEE 10th European Conference on Antennas and Propagation (EuCAP), pp. 1–3, 2016.
[9] W. Su, Q. Liu, H. He, and H. Zhang, ‘‘A new context awareness scheme for multi-mode mobile terminals in mobile Internet,’’ IET 3rd International Conference on Wireless, Mobile and Multimedia Networks (ICWMNN), pp. 95–98, 2010.
[10] L. Li, Q. Chen, Q. Yuan, C. Liang, and K. Sawaya, “Surface-wave suppression band gap and plane-wave reflection phase band of mushroom like photonic band gap structures,” Journal of Applied Physics, vol. 103, no. 023513, 2008.
[11] F. A. C. S. Lucena, C. P. N. Silva, T. L. Pedrosa and M. T. de Melo, “Gain Enhancement of Dual-band Antenna Using Square Loop FSS,” IEEE International Symposium on Antennas and Propagation & USNC/URSI National Radio Science Meeting, pp. 2169–2170, 2017.
[12] B. Xu, K. Zhao, Z. Ying, S. He, and J. Hu, “Investigation of Surface Waves Suppression on 5G Handset Devices at 15GHz,” IEEE 10th European Conference on Antennas and Propagation (EuCAP), pp. 1–4, 2016.
[13] M. Waqas, S. Bashir, and M. J. Khan, “High Gain Microstrip Patch Antenna using Double Negative Metamaterial,” IEEE International Conference on Emerging Technologies (ICET), pp. 1–5, 2015.
[14] C. ESSID, A. SAMET, “A Design of Phased Array Antenna with Metamaterial Circular SRR for 5G applications,” IEEE 28th Annual International Symposium on Personal, Indoor, and Mobile Radio Communications (PIMRC), pp. 1–4, 2017.
[15] Md. M. Hasan, M. R. I. Faruque, and M. T. Islam, “Dual Band Metamaterial Antenna for LTE/Bluetooth/WiMAX System,” Scientific Reports, vol. 8, pp. 1240, 2018.
[16] U. Ali, S. Ullah, J. Khan, M. Shafi, B. Kamal, A. Basir, J. A. Flint, and R. D. Seager, “Design and SAR Analysis of Wearable Antenna on Various Parts of Human Body, Using Conventional and Artificial Ground Planes”, Journal of Electrical Engineering and Technology, vol. 12, no. 1, pp. 317-328, 2017.
[17] C. A. Balanis, Antenna Theory Analysis and Design, 2nd Edition, New York: John Wiley & Sons, 1997.
[18] F. Hirtenfelder, “Effective Antenna Simulations Using Computer Simulation Technology Microwave Studio,” 2nd International ITG Conference on Antennas (INICA-07), pp. 239–239, 2007.
[19] S. Bashir, “Design and synthesis of non-uniform high impedance surface based wearable antennas,” PhD. Dissertation, Dep. Electronics and Electrical Eng., Loughborough Univ., Leicestershire, UK, 2009.
[20] Md. S. Alam, N. Misran, B. Yatim, and M. T. Islam, “Development of Electromagnetic Band Gap Structures in the Perspective of Microstrip Antenna Design,” Journal of Antennas and Propagation, 2013.