Shamsuri Agus Amira Nur Suraya, Sabapathy Thennarasan, Jusoh Muzammil, Abdelghany Mahmoud A, Hossain Kabir, Padmanathan Surentiran, Al-Bawri Samir Salem, Soh Ping Jack
Advanced Communication Engineering (ACE), Centre of Excellence, Universiti Malaysia Perlis (UniMAP), Jalan Tiga, Pengkalan Jaya Business Centre, Kangar 01000, Malaysia.
Faculty of Electronic Engineering Technology, Universiti Malaysia Perlis (UniMAP), Kampus Alam UniMAP Pauh Putra, Arau 02600, Malaysia.
Polymers (Basel). 2022 May 13;14(10):1989. doi: 10.3390/polym14101989.
In this paper, we present a textile multiple-input−multiple-output (MIMO) antenna designed with a metamaterial inspired reactive impedance surface (RIS) and electromagnetic bandgap (EBG) using viscose-wool felt. Rectangular RIS was used as a reflector to improve the antenna gain and bandwidth to address well known crucial challenges—maintaining gain while reducing mutual coupling in MIMO antennas. The RIS unit cell was designed to achieve inductive impedance at the center frequency of 2.45 GHz with a reflection phase of 177.6°. The improved bandwidth of 170 MHz was achieved by using a square shaped RIS under a rectangular patch antenna, and this also helped to attain an additional gain of 1.29 dBi. When the antenna was implemented as MIMO, a split ring resonator backed by strip line type EBG was used to minimize the mutual coupling between the antenna elements. The EBG offered a sufficient band gap region from 2.37 GHz to 2.63 GHz. Prior to fabrication, bending analysis was carried out to validate the performance of the reflection coefficient (S11) and transmission coefficient (S21). The results of the analysis show that bending conditions have very little impact on antenna performance in terms of S-parameters. The effect of strip line supported SRR-based EBG was further analyzed with the fabricated prototype to clearly show the advantage of the designed EBG towards the mutual coupling reduction. The designed MIMO-RIS-EBG array-based antenna revealed an S21 reduction of −9.8 dB at 2.45 GHz frequency with overall S21 of <−40 dB. The results also indicated that the proposed SRR-EBG minimized the mutual coupling while keeping the mean effective gain (MEG) variations of <3 dB at the desired operating band. The specific absorption rate (SAR) analysis showed that the proposed design is not harmful to human body as the values are less than the regulated SAR. Overall, the findings in this study indicate the potential of the proposed MIMO antenna for microwave applications in a wearable format.
在本文中,我们展示了一种采用粘胶羊毛毡设计的、带有超材料启发的电抗阻抗表面(RIS)和电磁带隙(EBG)的纺织多输入多输出(MIMO)天线。矩形RIS用作反射器,以提高天线增益和带宽,从而应对众所周知的关键挑战——在MIMO天线中降低互耦的同时保持增益。RIS单元胞被设计为在2.45 GHz中心频率处实现电感阻抗,反射相位为177.6°。通过在矩形贴片天线下方使用方形RIS,实现了170 MHz的带宽改善,这也有助于获得额外1.29 dBi的增益。当天线实现为MIMO时,采用由带状线型EBG支持的裂环谐振器来最小化天线单元之间的互耦。EBG在2.37 GHz至2.63 GHz之间提供了一个足够的带隙区域。在制造之前,进行了弯曲分析,以验证反射系数(S11)和传输系数(S21)的性能。分析结果表明,就S参数而言,弯曲条件对天线性能的影响非常小。通过制造的原型进一步分析了带状线支持的基于SRR的EBG的效果,以清楚地展示所设计的EBG在降低互耦方面的优势。所设计的基于MIMO-RIS-EBG阵列的天线在2.45 GHz频率处的S21降低了-9.8 dB,总体S21 < -40 dB。结果还表明,所提出的SRR-EBG在期望的工作频段内将互耦最小化,同时保持平均有效增益(MEG)变化< 3 dB。比吸收率(SAR)分析表明,所提出的设计对人体无害,因为其值小于规定的SAR。总体而言,本研究中的发现表明了所提出的MIMO天线在可穿戴形式的微波应用中的潜力。