4.6 Article

A Hybrid Mutual Coupling Reduction Technique in a Dual-Band MIMO Textile Antenna for WBAN and 5G Applications

Journal

IEEE ACCESS
Volume 9, Issue -, Pages 150768-150780

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/ACCESS.2021.3125049

Keywords

Antennas; MIMO communication; Mutual coupling; Bending; Bandwidth; Antenna arrays; Dual band; Array antennas; wearable antenna; MIMO antenna; mutual coupling reduction; antenna and propagation; bioelectromagnetics; wearable

Funding

  1. Universiti Malaysia Perlis (UniMAP)

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This paper introduces a hybrid mutual coupling reduction technique applied to a dual-band textile MIMO antenna, resulting in significant suppression of mutual coupling and maintenance of wideband impedance bandwidth through the introduction of a line patch and patch rotation technique. The proposed antenna exhibits robust performance under various bending configurations, achieving good agreements between simulated and measured results in both planar and bending conditions. With a low mutual coupling, high diversity gain, and maintained gain even under bending conditions, the antenna shows promise for wireless body area network and 5G applications.
This paper presents a hybrid mutual coupling reduction technique applied onto a dual-band textile MIMO antenna for wireless body area network and 5G applications. The MIMO antenna consists of two hexagonal patch antennas, each integrated with a split-ring (SR) and a bar slot to operate in dual-band mode at 2.45 GHz and 3.5 GHz. Each patch is dimensioned at 47.2 x 31 mm(2). This hybrid technique results in a simple structure, while enabling significant reduction of mutual coupling (MC) between the closely spaced patches (up to 0.1 lambda). This technique combines a line patch and a patch rotation technique, explained as follows. First, a line patch is introduced at an optimized distance to enable operation with a broad impedance bandwidth at both target frequencies. One of the patches is then rotated by 90 degrees at an optimized distance, resulting in a significant MC suppression while maintaining the dual and broad impedance bandwidth. The proposed MIMO antenna is further evaluated under several bending configurations to assess its robustness. A satisfactory agreement between simulated and measured results is observed in both planar and bending conditions. Results show that the MIMO antenna achieves an impedance bandwidth of 4.3 % and 6.79 % in the 2.45 GHz and 3.5 GHz band, respectively. Moreover, very low MC (S-21 < -30 dB) is achieved, with a low (<0.002) envelop correlation coefficient, and about 10 dB of diversity gain at both desired frequencies using this technique. Even when bent at an angle of 50 degrees at the x- and y-axes, the antenna bent maintained a realized gain of 1.878 dBi and 4.027 dBi in the lower and upper band, respectively. A robust performance is offered by the antenna against the lossy effects of the human body with good agreements between simulated and measured results.

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