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Tunable perfect metamaterial absorber and sensor applications

机译:可调谐的完美超材料吸收器和传感器应用

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摘要

Operation frequencies of traditional metamaterial absorbers are fixed meaning that it is not possible to change that frequency after the fabrication. Therefore, more studies are focused on the design of Tunable metamaterial absorber (TMA) since it is important to expand operation frequency. If the impedance of one or more layers of an absorber can be changed according to the applied electrical optical signal, then it would be possible to realize tunable absorbing designs. However, TMA studies reported previously are mainly focused on absorbing mechanism at microwave frequencies. In this study, TMA with varactor diode is designed and analyzed for absorber and sensor configurations. TMA is constructed by using a simple rectangular-shape geometry having two splits and a varactor diode placed at the right split. Numerical and experimental results show that perfect absorption is achieved when 0-10 V reverse bias voltage is applied. Resonance frequency can be easily tuned by changing the reverse bias voltage. Frequency dependent absorption behavior of TMA is presented with respect to different incident angles for TE and TM polarizations. A sensor application, knowing the absorption resonance frequency can provide the ability to determine the temperature of materials. The novelty of the study is to determine the temperature or the other parameters such as humidity or pressure by using TMA. It is also possible to determine the material type or its density if limited resource such as frequency generator is present.
机译:传统超材料吸收器的工作频率是固定的,这意味着在制造后无法更改该频率。因此,由于扩展工作频率很重要,因此更多的研究集中在可调谐超材料吸收器(TMA)的设计上。如果可以根据所施加的电光信号来改变吸收器的一层或多层的阻抗,那么将有可能实现可调吸收设计。但是,先前报道的TMA研究主要集中在微波频率下的吸收机理。在这项研究中,设计并分析了带有变容二极管的TMA,以分析吸收器和传感器的配置。 TMA是通过使用具有两个分割线和位于右侧分割线的变容二极管的简单矩形几何结构构建的。数值和实验结果表明,当施加0-10 V反向偏置电压时,可以实现完美的吸收。通过改变反向偏置电压可以很容易地调整谐振频率。相对于TE和TM极化的不同入射角,提出了TMA随频率变化的吸收行为。知道吸收共振频率的传感器应用程序可以提供确定材料温度的能力。这项研究的新颖性是通过使用TMA确定温度或其他参数(例如湿度或压力)。如果存在有限的资源(如频率发生器),则还可以确定材料类型或其密度。

著录项

  • 来源
    《Journal of materials science》 |2016年第11期|12091-12099|共9页
  • 作者单位

    Department of Informatics, Institute of Natural and Applied Sciences, Mustafa Kemal University, Antakya, Hatay, Turkey;

    Electrical and Electronics Engineering, Iskenderun Technical University, Iskenderun, Hatay, Turkey;

    Department of Electrical and Electronics Engineering, 7 Aralik University, Kilis, Turkey;

    Department of Electrical and Electronics Engineering, 7 Aralik University, Kilis, Turkey;

    Department of Electrical and Electronics Engineering, Middle East Technical University - Northern Cyprus Campus, Kalkanli, Guzelyurt, TRNC/Mersin 10, Turkey;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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