Design and Performance Analysis of a Low-Profile Dual-Band Antenna with Low Specific Absorption Rate Using Textile Materials for Wearable and RF Energy Harvesting Applications

被引:7
作者
El Batal, Khadija [1 ,2 ]
Douhi, Said [1 ,2 ]
Eddiai, Adil [1 ]
Das, Sudipta [3 ]
Cherkaoui, Omar [2 ]
Mazroui, M'hammed [1 ]
机构
[1] Hassan II Univ, Fac Sci Ben MSik, Lab Phys Condensed Matter LPMC, BP 7955, Casablanca, Morocco
[2] Higher Sch Text & Clothing Ind ESITH, REMTEX Lab, Casablanca, Morocco
[3] IMPS Coll Engn & Technol, Dept Elect & Commun Engn, Malda 732103, West Bengal, India
关键词
All-textile; dual-band; specific absorption rate; wearable antenna; wireless communication; RF energy harvesting; RECTENNA; COMPOSITE;
D O I
10.1007/s11664-024-11455-5
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
This study presents a low-profile, dual-band microstrip patch antenna (MPA) optimized for wearable applications, with a focus on achieving a low specific absorption rate (SAR). The antenna operates efficiently in the 5.8 GHz ISM (industrial, scientific, and medical) band and the 8.3 GHz X-band. A strategically designed C-shaped slot adjusts the resonant frequencies to align with these operational bands. The performance characteristics are evaluated across various textile substrates, including polyester-cotton, felt, denim, polyester, and Cordura, to determine the most suitable material for specific application needs. Constructed from conductive textile materials on a single poly-cotton substrate layer, the antenna combines flexibility and conformity to the human body, making it ideal for wearable technology. The compact design measures 40 mm3 x 45 mm3 x 1.17 mm3 (0.77 lambda 0 x 0.87 lambda 0 x 0.022 lambda 0 at 5.8 GHz), and it demonstrates simulated peak gains of 8.73 dBi and 4.64 dBi for the 5.8 GHz and 8.3 GHz bands, respectively. The antenna achieves bandwidths of 150 MHz at 5.8 GHz and 190 MHz at 8.3 GHz. Experimental results confirm stable return loss (S11) performance despite structural deformations and proximity to the human body. Additionally, the antenna maintains SAR values within the European Union's standard limit of 2 W/kg, attributed to its full ground plane structure. These attributes highlight the antenna's potential for reliable and efficient operation in wearable technologies and RF energy harvesting systems, particularly in indoor environments.
引用
收藏
页码:8141 / 8153
页数:13
相关论文
共 40 条
[1]   Electrical conductivity and morphological observation of hybrid filler: Silver-graphene oxide nanocomposites for wearable antenna [J].
Al-Gburi, Ahmed Jamal Abdullah ;
Ismail, Mohd Muzafar ;
Mohammed, Naba Jasim ;
Buragohain, Akash ;
Alhassoon, Khaled .
OPTICAL MATERIALS, 2024, 148
[2]  
Balanis CA., 2005, Antenna theory: analysis and design, V3
[3]   Rheological Properties and Inkjet Printability of a Green Silver-Based Conductive Ink for Wearable Flexible Textile Antennas [J].
Boumegnane, Abdelkrim ;
Douhi, Said ;
Batine, Assia ;
Dormois, Thibault ;
Cochrane, Cedric ;
Nadi, Ayoub ;
Cherkaoui, Omar ;
Tahiri, Mohamed .
SENSORS, 2024, 24 (09)
[4]   Wideband metasurface-loaded rectenna for azimuth-insensitive electromagnetic energy absorption using characteristic mode analysis [J].
Deng, Lianwen ;
He, Zhe-Jia ;
Huang, Shengxiang ;
Qiu, Lei-Lei ;
Zhu, Lei .
JOURNAL OF APPLIED PHYSICS, 2024, 135 (11)
[5]  
Douhi S., 2023, J. Nano-Electron. Phys., V15, P3010
[6]  
Douhi S., 2023, MATER TODAY-PROC, DOI [DOI 10.1016/J.MATPR.2023.12.034, 10.1016/j.matpr.2023.12.034]
[7]  
Douhi S., 2023, J NANO ELECTRON PHYS, V15, P01028, DOI [10.21272/jnep.15(1).01028, DOI 10.21272/JNEP.15(1).01028]
[8]   Design of a compact super wideband all-textile antenna for radio frequency energy harvesting and wearable devices [J].
Douhi, Said ;
Eddiai, Adil ;
Das, Sudipta ;
Madhav, Boddapati Taraka Phani ;
Meddad, Mounir ;
Cherkaoui, Omar ;
Mazroui, M'hammed .
OPTICAL AND QUANTUM ELECTRONICS, 2023, 55 (13)
[9]  
El Batal K., 2023, MATER TODAY-PROC, DOI [10.1016/j.matpr.2023.11.126, DOI 10.1016/J.MATPR.2023.11.126]
[10]   Highly flexible, high-performance radio-frequency antenna based on free-standing graphene/polymer nanocomposite film [J].
Jeon, Hoyun ;
Jin, Sehoon ;
Shin, Keun-Young .
APPLIED SURFACE SCIENCE, 2022, 582