DESIGN AND ANALYSIS OF A 60 GHZ MILLIMETER WAVE ANTENNA
DOI:
https://doi.org/10.11113/jt.v78.8249Keywords:
Millimeter wave, metamaterial, bandgap, medical implantsAbstract
In this paper an inset feed 60 GHz millimeter wave microstrip patch antenna is proposed for future high speed wireless communication systems. The performance of a conventional 60 GHz patch antenna compared with metamaterial-based 60 GHz antennas. The later employs three types (mushroom, cross and hexagonal) of Electromagnetic Bandgap (EBG) surfaces as a ground planes. The millimeter wave antenna employing the cross-shaped EBG give improved gain as compared to the rest of the antenna models. The 60 GHz antenna based on the mushroom type EBG present better efficiency due to the surface suppression by the ground plane. The proposed antennas can be used in future high speed wireless applications. Due to the very small size these antennas are suitable for medical implants operating in the unlicensed millimeter wave band.
References
Barakat, A., Allam, A., Pokharel, R.K., Elsadek, H., El-Sayed, M., and Yoshida, K . 2012. 60 GHz triangular monopole Antenna-on-Chip over an Artificial Magnetic Conductor. Antennas and Propagation (EUCAP), 6th European Conference. Prague, Czech Republic. 26-30 March 2012. 972-976.
Wells, J. 2006. New multi-gigabit wireless systems satisfy high-security rapid response applications. Military Embedded Systems, SPRING. 1-4
Olver, A. D. 1989. Millimeter wave systems-past, present and future. Radar and Signal Processing, IEE Proceedings F. 136(1): 35-52.
Al-Hasan, M.J., Denidni, T.A., and Sebak, A.2011. A new UC-EBG based-dielectric resonator antenna for millimeter-wave applications. Antennas and Propagation (APSURSI), 2011 IEEE International Symposium. Spokane, WA. 3-8 July 2011. 1274 – 1276.
Palikaras, G.K., Feresidis, A.P., and Parini, C.G. 2011. Advances in Conformal Metamaterial Antennas Using High Impedance (HIS) and Electromagnetic Bandgap (EBG) Surfaces. Antennas and Propagation (EUCAP), Proceedings of the 5th European Conference. Rome. 11-15 April 2011. 3466 – 3469.
Ashish kumar. 2013. Rectangular microstrip patch antenna using “L†slot structure. ISTP-JREEE, 2(2): 15-18
Sievenpiper, Dan., Zhang, L., Broas, R.F.J., Alexopolous, N.G., and Yablonovitch, E. 1999. High-impedance electromagnetic surface with a forbidden frequency band. Microwave Theory and Techniques, IEEE Transactions. 47(11): 2059 – 2074.
Fan Yang, and Rahmat-Samii, Y. 2003. Reflection phase characterizations of the EBG ground plane for low profile wire antenna applications. Antennas and Propagation, IEEE Transactions .51(10):2691 – 2703.
Bait-Suwailam, M.M., and Ramahi, O.M. 2011. Mitigation of electromagnetic field leakage from aperturesand enclosures using electromagnetic bandgap (EBG) structures. Electromagnetic Compatibility (EMC): 39 – 44.
Kouveliotis, N.K.., Trakadas, P.T., Ileretakis, 1.1., and Capsalis, C.N. 2005. Antenna Reverberation Chamber. Encyclopedia of RIF and Microwave Engineering. 239-251,
Yang, F., and Rahmat-Samii, Y. 2002. Reflection phase characterization of an electromagnetic bandgap (EBG) surface. Antennas and Propagation Society International Symposium, IEEE. San Antonio, TX, USA. 16-21 June 2002. 3:744–747.
Downloads
Published
Issue
Section
License
Copyright of articles that appear in Jurnal Teknologi belongs exclusively to Penerbit Universiti Teknologi Malaysia (Penerbit UTM Press). This copyright covers the rights to reproduce the article, including reprints, electronic reproductions, or any other reproductions of similar nature.