High-Isolation Array Antenna Design for 5G mm-Wave MIMO Applications

被引:0
|
作者
Abbasi, Nisar Ahmad [1 ]
Virdee, Bal [2 ]
Din, Iftikhar Ud [3 ]
Ullah, Sadiq [3 ]
Althuwayb, Ayman A. [4 ]
Rashid, Nasr [4 ,5 ]
Soruri, Mohammad [6 ]
See, Chan Hwang [7 ]
Alibakhshikenari, Mohammad [8 ]
机构
[1] Department of Electrical Engineering, University of Hafr Al Batin, Hafr Al Batin,39524, Saudi Arabia
[2] Center for Communications Technology, London Metropolitan Unversity, 166-220 Holloway Road, London,N8 8DB, United Kingdom
[3] Telecommunication Engineering Department, University of Engineering and Technology, Mardan,23200, Pakistan
[4] Electrical Engineering Department, College of Engineering, Jouf University, Aljouf, Sakaka,72388, Saudi Arabia
[5] Department of Electrical Engineering, Faculty of Engineering, Al-Azhar University, Nasr City, Cairo,11884, Egypt
[6] Faculty of Ferdows Technical, University of Birjand, Birjand, Iran
[7] School of Computing, Engineering and the Built Environment, Edinburgh Napier University, 10 Colinton Rd, Edinburgh,EH10 5DT, United Kingdom
[8] Electronics Engineering Department, University of Rome Tor Vergata, Rome,00133, Italy
关键词
5G mobile communication systems - Integrated circuit design - Masers - Microstrip antennas - Microwave antennas;
D O I
10.1007/s10762-024-01027-3
中图分类号
学科分类号
摘要
A low form-factor design of an eight-element antenna array is presented for 5G mm-wave MIMO applications. The design features modified circular patch radiators that achieve an impedance bandwidth of 2.6 GHz, covering frequencies from 37.7 to 40.3 GHz. The radiating elements are strategically arranged on opposite sides of a common substrate and interleaved to significantly reduce mutual coupling between adjacent elements. This innovative technique effectively minimizes coupling between the array’s radiators without the need of a decoupling structure. The MIMO antenna is fabricated on a low-loss Rogers-5880 substrate, with a thickness of 0.8 mm, a dielectric constant of 2.2, and a loss tangent of 0.0009, ensuring minimal signal loss and confirming the accuracy of simulation results. The inter-element isolation exceeds 25 dB, and the array provides a gain greater than 6 dBi, with a peak gain of 7.5 dBi at 39 GHz. This high gain enhances the antenna’s ability to mitigate atmospheric attenuation at higher frequencies, making it highly suitable for 5G mm-wave applications. © Crown 2024.
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