Frequency-reconfigurable stacked patch microstrip antenna using aperture-coupled technique

This paper presents a novel structure of a frequency-reconfigurable microstrip antenna fed with an aperture-coupled technique and stacked patch technology. The proposed antenna design has a unique structure; the radiating elements (top and bottom patch) are sorted in stacked substrate layers to indi...

Full description

Bibliographic Details
Published in:International Journal of Microwave and Optical Technology
Main Author: Ramli N.; Ali M.T.; Yusof A.L.; Muhamud-Kayat S.; Aziz A.A.A.
Format: Article
Language:English
Published: International Journal of Microwave and Optical Technology 2014
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-84923218897&partnerID=40&md5=449c26589dd03ad6b2ec6caf37bdabd3
id 2-s2.0-84923218897
spelling 2-s2.0-84923218897
Ramli N.; Ali M.T.; Yusof A.L.; Muhamud-Kayat S.; Aziz A.A.A.
Frequency-reconfigurable stacked patch microstrip antenna using aperture-coupled technique
2014
International Journal of Microwave and Optical Technology
9
3

https://www.scopus.com/inward/record.uri?eid=2-s2.0-84923218897&partnerID=40&md5=449c26589dd03ad6b2ec6caf37bdabd3
This paper presents a novel structure of a frequency-reconfigurable microstrip antenna fed with an aperture-coupled technique and stacked patch technology. The proposed antenna design has a unique structure; the radiating elements (top and bottom patch) are sorted in stacked substrate layers to indicate the different operating frequencies. One PIN diode switch integrated at the feedline is reconfigured to either ON or OFF mode to control the feedline's length, thus affecting the current distribution along it. Furthermore, a new coupling method in aperture-coupled technique is implemented, whereby the currents flow from the feedline's length will activate selected aperture slots on the ground and the wave will radiate to the selected patch at different substrate layers thus achieving the frequency reconfigurability. When the PIN diode switch is in ON mode, the proposed antenna is capable to operate at 2.6 GHz while in OFF mode, the antenna is able to operate at 3.5 GHz by using the same antenna. Therefore, the effects of an aperture slots characteristic and the PIN diode switch position along the feedline have been studied. The prototype of the proposed antenna is tested/fabricated with the biasing circuit to validate the antenna's performance in terms of return loss and radiation pattern. The results confirm that the antenna has a good agreement between the simulation and measurement results. © 2014 IAMOT.
International Journal of Microwave and Optical Technology
15530396
English
Article

author Ramli N.; Ali M.T.; Yusof A.L.; Muhamud-Kayat S.; Aziz A.A.A.
spellingShingle Ramli N.; Ali M.T.; Yusof A.L.; Muhamud-Kayat S.; Aziz A.A.A.
Frequency-reconfigurable stacked patch microstrip antenna using aperture-coupled technique
author_facet Ramli N.; Ali M.T.; Yusof A.L.; Muhamud-Kayat S.; Aziz A.A.A.
author_sort Ramli N.; Ali M.T.; Yusof A.L.; Muhamud-Kayat S.; Aziz A.A.A.
title Frequency-reconfigurable stacked patch microstrip antenna using aperture-coupled technique
title_short Frequency-reconfigurable stacked patch microstrip antenna using aperture-coupled technique
title_full Frequency-reconfigurable stacked patch microstrip antenna using aperture-coupled technique
title_fullStr Frequency-reconfigurable stacked patch microstrip antenna using aperture-coupled technique
title_full_unstemmed Frequency-reconfigurable stacked patch microstrip antenna using aperture-coupled technique
title_sort Frequency-reconfigurable stacked patch microstrip antenna using aperture-coupled technique
publishDate 2014
container_title International Journal of Microwave and Optical Technology
container_volume 9
container_issue 3
doi_str_mv
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-84923218897&partnerID=40&md5=449c26589dd03ad6b2ec6caf37bdabd3
description This paper presents a novel structure of a frequency-reconfigurable microstrip antenna fed with an aperture-coupled technique and stacked patch technology. The proposed antenna design has a unique structure; the radiating elements (top and bottom patch) are sorted in stacked substrate layers to indicate the different operating frequencies. One PIN diode switch integrated at the feedline is reconfigured to either ON or OFF mode to control the feedline's length, thus affecting the current distribution along it. Furthermore, a new coupling method in aperture-coupled technique is implemented, whereby the currents flow from the feedline's length will activate selected aperture slots on the ground and the wave will radiate to the selected patch at different substrate layers thus achieving the frequency reconfigurability. When the PIN diode switch is in ON mode, the proposed antenna is capable to operate at 2.6 GHz while in OFF mode, the antenna is able to operate at 3.5 GHz by using the same antenna. Therefore, the effects of an aperture slots characteristic and the PIN diode switch position along the feedline have been studied. The prototype of the proposed antenna is tested/fabricated with the biasing circuit to validate the antenna's performance in terms of return loss and radiation pattern. The results confirm that the antenna has a good agreement between the simulation and measurement results. © 2014 IAMOT.
publisher International Journal of Microwave and Optical Technology
issn 15530396
language English
format Article
accesstype
record_format scopus
collection Scopus
_version_ 1823296164971151360