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使用高有效媒质比的偏振相关超材料降低亚 6GHz 频段的比吸收率

Specific absorption rate reduction for sub-6 frequency range using polarization dependent metamaterial with high effective medium ratio.

机构信息

Space Science Center (ANGKASA), Universiti Kebangsaan Malaysia, UKM, 43600, Bangi, Selangor, Malaysia.

Dept. of Electrical, Electronic & Systems Engineering, Universiti Kebangsaan Malaysia, UKM, 43600, Bangi, Selangor, Malaysia.

出版信息

Sci Rep. 2022 Feb 2;12(1):1803. doi: 10.1038/s41598-022-05851-2.

Abstract

This research study introduces a multi-layered square-shaped metamaterial (MSM) structure for the electromagnetic (EM) absorption reduction in wireless mobile devices. Usually, wireless devices, for example, a cellular phone emits radiofrequency (RF) energy to the surroundings when used it. Moreover, fast-growing wireless communication technologies that support cellular data networks have also motivated this study. Hence, the focus of the research was to reduce the Specific Absorption Rate (SAR) for the Sub-6 frequency range by designing a multi-layered and compact, 10 × 10mm sized metamaterial structure that can be attached inside a mobile phone by avowing any overlapping with existing parts. Overall, six distinct square-shaped metamaterials were constructed on 0.25 mm thick Rogers RO3006 substrate material to reach the target of this investigation. Furthermore, numerical simulations of the proposed metamaterial electromagnetic properties and SAR reduction values were performed by adopting Computer Simulation Technology (CST) Microwave Studio 2019 software. From these simulations, the proposed MSM structure exhibited multi-band resonance frequencies accurately at 1.200, 1.458, 1.560, 1.896 GHz (at L-band), 2.268, 2.683 2.940, 3.580 GHz (at S-band) and 5.872 GHz (at C-band). Simultaneously, the proposed MSM structure was simulated in High-Frequency Structure Simulator (HFSS) to authenticate the numerical simulation data. The comparison of simulation data shows that only the primary and last resonance frequencies were reduced by 0.02 and 0.012 GHz, whereas the rest of the frequencies were increased by 0.042, 0.030, 0.040, 0.032, 0.107, 0.080, and 0.020 GHz in sequential order. In addition, the introduced MSM structure manifests left-handed behaviour at all the resonance frequencies. Nevertheless, the highest recorded SAR values were 98.136% and 98.283% at 1.560 GHz for 1 g and 10 g of tissue volumes. In conclusion, the proposed MSM met the objectives of this research study and can be employed in EM absorption reduction applications.

摘要

本研究提出了一种多层方形超材料(MSM)结构,用于减少无线移动设备中的电磁(EM)吸收。通常,无线设备(例如手机)在使用时会向周围环境发射射频(RF)能量。此外,支持蜂窝数据网络的快速发展的无线通信技术也推动了这项研究。因此,研究的重点是通过设计一种多层和紧凑的、尺寸为 10×10mm 的超材料结构来降低 Sub-6 频率范围内的比吸收率(SAR),该结构可以通过避免与现有部件重叠而安装在移动电话内部。总体而言,在 0.25mm 厚的罗杰斯 RO3006 基板材料上构建了六个不同的方形超材料,以实现本研究的目标。此外,采用计算机仿真技术(CST)微波工作室 2019 软件对所提出的超材料电磁特性和 SAR 降低值进行了数值模拟。通过这些模拟,所提出的 MSM 结构在 1.200、1.458、1.560、1.896GHz(L 波段)、2.268、2.683、2.940、3.580GHz(S 波段)和 5.872GHz(C 波段)处准确地呈现出多频共振频率。同时,在所提出的 MSM 结构在高频结构模拟器(HFSS)中进行了模拟,以验证数值模拟数据。模拟数据的比较表明,只有主和最后一个共振频率分别降低了 0.02 和 0.012GHz,而其余频率则分别增加了 0.042、0.030、0.040、0.032、0.107、0.080 和 0.020GHz。此外,所提出的 MSM 结构在所有共振频率处均表现出左手行为。然而,在 1.560GHz 下,组织体积为 1g 和 10g 时,记录到的最高 SAR 值分别为 98.136%和 98.283%。总之,所提出的 MSM 满足了本研究的目标,可以应用于 EM 吸收减少应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c0cd/8810977/2f0a8342de44/41598_2022_5851_Fig1_HTML.jpg

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