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一种基于磁性纳米材料的用于较低微波频段的超薄可调谐超材料吸波器。

An Ultrathin Tunable Metamaterial Absorber for Lower Microwave Band Based on Magnetic Nanomaterial.

作者信息

Ning Jing, Chen Ke, Zhao Wenbo, Zhao Junming, Jiang Tian, Feng Yijun

机构信息

School of Electronic Science and Engineering, Nanjing University, Nanjing 210093, China.

出版信息

Nanomaterials (Basel). 2022 Jun 21;12(13):2135. doi: 10.3390/nano12132135.

Abstract

At frequencies below 1 GHz, conventional microwave absorbers are limited by their large thickness or narrow absorption bandwidth; therefore, new techniques for efficient absorption for the lower microwave band are highly demanded. Here, we propose and fabricate an ultrathin tunable metamaterial absorber combining magnetic nanomaterials and metamaterial resonant structures for use in the lower microwave band (P band). The proposed absorber utilizes electrically controlled varactors to enable frequency tunability and magnetic nanomaterials as dielectric slabs for thickness reduction and bandwidth expansion at low frequencies. By adjusting the bias voltages of varactors, the resonant behavior of the absorbing structure can be dynamically tuned that covers a continuously tunable absorbing band from 0.41 to 1.02 GHz (85.3% in fractional bandwidth) with at least 10 dB reflection reduction. The total thickness of this absorber is 5 mm, which is only about 1/146 the wavelength of the lowest frequency. The agreement between the simulated and measured results validates the proposed design, and the structure has good angular stability that may be used as complex targets for low-RCS applications.

摘要

在低于1吉赫兹的频率下,传统微波吸收器受限于其较大的厚度或狭窄的吸收带宽;因此,对用于较低微波频段的高效吸收新技术有迫切需求。在此,我们提出并制造了一种超薄可调谐超材料吸收器,它结合了磁性纳米材料和超材料谐振结构,用于较低微波频段(P频段)。所提出的吸收器利用电控变容二极管实现频率可调性,并使用磁性纳米材料作为电介质平板,以在低频下减小厚度并扩展带宽。通过调整变容二极管的偏置电压,吸收结构的谐振行为可动态调谐,覆盖从0.41至1.02吉赫兹的连续可调吸收频段(分数带宽为85.3%),反射降低至少10分贝。该吸收器的总厚度为5毫米,仅约为最低频率波长的1/146。模拟结果与测量结果的一致性验证了所提出的设计,并且该结构具有良好的角度稳定性,可作为低雷达散射截面应用的复杂目标。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/61b7/9267954/fbf0a7eeae87/nanomaterials-12-02135-g001.jpg

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