Chitkara University Institute of Engineering and Technology, Chitkara University, Punjab, India.
Department of Computer Science and Engineering, Symbiosis Institute of Technology, Symbiosis International (Deemed University), Pune, India.
PLoS One. 2024 Nov 4;19(11):e0309690. doi: 10.1371/journal.pone.0309690. eCollection 2024.
The single-input-single-output technology experiences loss of data in the communication channel due to the receiving antenna undergoing fading of the signal impinged on it. Today's need is faster data transfer with multiple applications in the single antenna with multiple-identical radiating elements, leading to multiple-input-multiple-outputDWMB (MIMODWMB) technology. The MIMODWMB configuration with multi-band capability is the objective of the proposed work with applications ranging between microwave-millimeterWave bands. The four-port Dual-Wide Multi-Band (DWMB) MIMODWMB antenna radiating electro-magnetic-energy is proposed, which generates measured bandwidths of 7.27GHz-34.32GHz (Band 1) and 46.54GHz-71.52GHz (Band 2) including applications Up-link/Down-link Satellite System, X-Band, Ku-Band, ISM 24.0GHz (24.0GHz-24.25GHz), 24.0GHz UWB Band (21.65GHz-26.65GHz), n258, n257/n261 and n263 V-band. The proposed antenna technology is printed on Rogers's low permittivity substrate with a hexagon patch etched with dual merged-elliptical slot and three identical circular slots to achieve high impedance matching for Band 1. The partial-ground is etched by a rectangular slot for better impedance matching, and two-thin-etched rectangular slits generate 60.0GHz Band 2. The thin substrate, thickness 0.254mm, is utilized for flexible applications without compromising the operation of dual wide bandwidths. The flexible antenna is also subjected to analysis of Specific-Absorption-Rate (SAR) analysis at key frequencies within both the bands and found to be within the standard limit of 1.60W/Kg for 1g of the human tissue model and corresponds to 1.01W/Kg at 10.0GHz, 0.280W/Kg at 15.0GHz, 0.475W/Kg at 26.0GHz, 0.588W/Kg at 28.0GHz & 0.301W/Kg at 60.0GHz. The high diversity performance with Envelope Correlation Coefficient<0.50, Diversity Gain≈10.0dB, Total Active Reflection Coefficent<0dB, Channel Capacity Loss<0.40b/s/Hz and multi-band capability for mobile users make the proposed work suitable for flexible on-body applications in a wireless environment. The proposed work MIMODWMB antenna offers advantages such as reduced size (20mm×24mm: 0.61λ0×0.74λ0 at λ0 = 7.27GHz) and a wide range of impedance bandwidths, which are useful for several applications. Also, due to the flexible nature of the design, they can be used for future on-body wearable applications.
单输入单输出技术由于接收天线对信号的衰落,会在通信信道中丢失数据。如今的需求是在单个天线中使用多个相同的辐射元件,实现更快的数据传输和多种应用,从而推动多输入多输出(MIMO)多频段(DWMB)技术的发展。具有多频段能力的 MIMO DWMB 配置是本项工作的目标,应用范围涵盖微波毫米波波段。本文提出了一种四端口双宽多频段(DWMB)MIMO DWMB 天线,用于辐射电磁能,其测量带宽为 7.27GHz-34.32GHz(频段 1)和 46.54GHz-71.52GHz(频段 2),包括应用于卫星系统的上行链路/下行链路、X 波段、Ku 波段、ISM 24.0GHz(24.0GHz-24.25GHz)、24.0GHz 超宽带带(21.65GHz-26.65GHz)、n258、n257/n261 和 n263 V 波段。所提出的天线技术印刷在罗杰斯低介电常数基板上,基板上蚀刻有六边形贴片和两个合并的椭圆形槽以及三个相同的圆形槽,以实现频段 1 的高阻抗匹配。部分地面通过矩形槽进行蚀刻,以实现更好的阻抗匹配,两个薄的蚀刻矩形缝隙产生 60.0GHz 频段 2。薄的基板,厚度为 0.254mm,用于灵活的应用,而不会影响双宽频带的工作。柔性天线还在两个频段的关键频率处进行了特定吸收率(SAR)分析,并发现其在 1g 人体组织模型的 1.60W/Kg 标准限值内,在 10.0GHz 时为 1.01W/Kg,在 15.0GHz 时为 0.280W/Kg,在 26.0GHz 时为 0.475W/Kg,在 28.0GHz 时为 0.588W/Kg,在 60.0GHz 时为 0.301W/Kg。该天线具有高分集性能(包络相关系数<0.50)、分集增益≈10.0dB、总有源反射系数<0dB、信道容量损耗<0.40b/s/Hz 以及移动用户的多频段能力,使其适用于无线环境中的灵活体上应用。所提出的 MIMO DWMB 天线具有尺寸小(20mm×24mm:7.27GHz 时为 0.61λ0×0.74λ0)和宽阻抗带宽范围等优点,适用于多种应用。此外,由于设计的灵活性,它们可用于未来的体上可穿戴应用。