Shen Yang, Zhang Jieqiu, Pang Yongqiang, Zheng Lin, Wang Jiafu, Ma Hua, Qu Shaobo
College of Science, Air Force Engineering University, Xi'an, Shaanxi, 710051, People's Republic of China.
School of Electronics and Information Engineering, Xi'an Jiaotong University, Xi'an, Shaanxi, 710049, People's Republic of China.
Sci Rep. 2018 Mar 13;8(1):4423. doi: 10.1038/s41598-018-22163-6.
Distilled water has frequency dispersive characteristic and high value of imaginary part in permittivity, which can be seen as a good candidate of broadband metamaterial absorbers(MAs) in microwave. Here, an interesting idea based on the combination of water-substrate and metallic metamaterial in the three-dimensional construction is proposed, which can achieve outstanding broadband absorption. As a proof, the distilled water is filled into the dielectric reservoir as ultra-thin water-substrate, and then the water-substrates are arranged on the metal backplane periodically as three-dimensional water-substrate array(TWA). Simulation shows that the TWA achieves broadband absorption with the efficiency more than 90% from 8.3 to 21.0 GHz. Then, the trigonal metallic fishbone structure is introduced here between the water-substrate and the dielectric reservoir periodically as three-dimensional water-substrate metamaterial absorber(TWMA). The proposed TWMA could achieve ultra-broadband absorption from 2.6 to 16.8 GHz, which has increase by 64.8% in relative absorption bandwidth. Meanwhile, due to the participation of distilled water, the thermally tunable property also deserves to be discussed here. In view of the outstanding performance, it is worth to expect a wide range of applications to emerge inspired from the proposed construction.
蒸馏水具有频率色散特性,其介电常数虚部值较高,可被视为微波频段宽带超材料吸收体(MAs)的良好候选材料。在此,提出了一种基于水基片与金属超材料在三维结构中相结合的有趣想法,该想法能够实现出色的宽带吸收。作为验证,将蒸馏水作为超薄水基片填充到介质容器中,然后将水基片作为三维水基片阵列(TWA)周期性地排列在金属背板上。仿真表明,TWA在8.3至21.0 GHz频段内实现了效率超过90%的宽带吸收。接着,在此周期性地在水基片与介质容器之间引入三角金属鱼骨结构,形成三维水基片超材料吸收体(TWMA)。所提出的TWMA能够在2.6至16.8 GHz频段内实现超宽带吸收,相对吸收带宽增加了64.8%。同时,由于蒸馏水的参与,其热可调特性也值得在此讨论。鉴于其出色的性能,值得期待基于所提出结构激发的广泛应用出现。