A Decoupling method using Split Ring Resonator (SRR) for Tri-band MIMO Antenna for WLAN LTE Band and 5G applications

被引:0
作者
Malathi, A. Christina josephine [1 ]
Reddy, B. Vamsi Krishna [2 ]
Phanindra, K. Raj [2 ]
机构
[1] VIT Univ, Sch Elect Engn, Vellore 632014, India
[2] Univ S Florida, Tampa, FL USA
关键词
MIMO; Return loss; Isolation; WLAN; 5G; Mutual coupling; ECC; LTE; TARC; SRR (split ring resonator); MUTUAL COUPLING REDUCTION; FOLDED MONOPOLE ANTENNAS; DESIGN;
D O I
10.7716/aem.v13i1.2272
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
MIMO antenna design has always been a topic of interest in wireless technology. Although it has many benefits, the key challenge is to minimize mutual coupling between antenna elements. The concept of metamaterial is an ongoing technique used for isolation enhancement between antenna elements. This study presents a decoupling technique between two tri -band antennas for LTE, WLAN, and 5G applications. For 3.5GHz, a monopole is initially created; the other two resonant frequencies are produced by changing the partial ground plane. Then, a MIMO antenna system is created using two tri -band monopoles. The resonators of low band can minimize the mutual coupling for two higher bands by suppressing surface wave propagation. Finally, coupling is reduced in the low band by using a Split Ring Resonator (SRR) to cancel out the original coupling. The reported MIMO antenna spans the 2.4, 3.5, 5.8 GHz covering LTE, 5G and WLAN bands, with maximum return loss of -22, -35 ,-38 dB and with a mutual coupling of -25, -18 and -32 dB. The envelope correlation co-efficient is less than 0.01 and the total active reflection co-efficient is less than -10 dB which are within the acceptable limits. The realized gain for the antenna is 1.02, 1.89, and 1.43 dB at 2.4, 3.5 and 5.8 GHz respectively.
引用
收藏
页码:19 / 24
页数:6
相关论文
共 19 条
[11]   An LTE-Band Dual-Antenna Design with an Enhanced Antenna Efficiency [J].
Kim, Jinyong ;
Chung, Kyungho ;
Ho, Yochuol ;
Kim, Moonil .
IEICE TRANSACTIONS ON COMMUNICATIONS, 2009, E92B (11) :3554-3556
[12]   Analysis of the Envelope Correlation Coefficient of MIMO Antennas Connected with Suspended Lines [J].
Kim, Seung-Ho ;
Chung, Jae-Young .
JOURNAL OF ELECTROMAGNETIC ENGINEERING AND SCIENCE, 2020, 20 (02) :83-90
[13]   Design of a MIMO Antenna with Improved Isolation Using MNG Metamaterial [J].
Lee, Youngki ;
Ga, Deukhyeon ;
Choi, Jaehoon .
INTERNATIONAL JOURNAL OF ANTENNAS AND PROPAGATION, 2012, 2012
[14]  
Lihao Huang, 2010, IEEE Antennas Wireless Propag, DOI 0.1109/ICMMT.2010.5524882
[15]   A Novel Metamaterial MIMO Antenna with High Isolation for WLAN Applications [J].
Nguyen Khac Kiem ;
Huynh Nguyen Bao Phuong ;
Quang Ngoc Hieu ;
Dao Ngoc Chien .
INTERNATIONAL JOURNAL OF ANTENNAS AND PROPAGATION, 2015, 2015
[16]   A CSRR Loaded MIMO Antenna System for ISM Band Operation [J].
Sharawi, Mohammad S. ;
Khan, Muhammad U. ;
Numan, Ahmad B. ;
Aloi, Daniel N. .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2013, 61 (08) :4265-4274
[17]  
Sidhu AK, 2023, ADV ELECTROMAGN, V12, P58
[18]   Triple-Band MIMO Antenna for Mobile Wireless Applications [J].
Sun, Jwo-Shiun ;
Fang, Han-Sheng ;
Lin, Po-Yen ;
Chuang, Ching-Song .
IEEE ANTENNAS AND WIRELESS PROPAGATION LETTERS, 2016, 15 :500-503
[19]   Wideband MIMO antenna with enhanced isolation for LTE, WiMAX and WLAN mobile handsets [J].
Toktas, A. ;
Akdagli, A. .
ELECTRONICS LETTERS, 2014, 50 (10) :723-U182