超表面虚拟吸收器:通过等效集总电路模型揭示工作条件

IF 1.5 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY EPJ Applied Metamaterials Pub Date : 2020-11-18 DOI:10.36227/techrxiv.13247426
A. Marini, D. Ramaccia, A. Toscano, F. Bilotti
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引用次数: 10

摘要

虚吸收概念是近年来在电磁学和光学中观察到的一种新现象,它在理论上是指在有限体积的材料内无限积累能量而不耗散。反常行为是通过用适当的复频率ω = ωr + jωi照射虚拟吸收系统的复零散射本征模来实现的,其值严格由系统特性决定。本文研究了零极散射对在复频率平面上的位置与基于超表面的无损虚拟吸收器输入阻抗的关系。我们解析地推导出适当调制的单色平面波被系统虚吸收并存储在其体积内的条件。该分析是通过模拟正常撞击平面波通过其在任意无功负载中终止的等效传输线模型的传播来进行的,该模型反过来模拟了所考虑的基于超表面的系统的输入阻抗。该研究允许通过评估其等效电路的时间常数来先验地确定基于超表面的系统是否支持虚拟吸收。
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Metasurface virtual absorbers: unveiling operative conditions through equivalent lumped circuit model
Virtual absorption concept has been recently introduced as a new phenomenon observed in electromagnetics and optics consisting of theoretically unlimited accumulation of energy within a finite volume of material without dissipation. The anomalous behaviour is achieved by engaging the complex zero scattering eigenmodes of the virtual absorbing system by illuminating it with a proper complex frequency ω = ω r  + jω i , whose value is strictly determined by the system characteristics. In this paper, we investigate on the position of the zero-pole scattering pairs in the complex frequency plane as a function of the input impedance of the metasurface-based lossless virtual absorber. We analytically derive the conditions under which a properly modulated monochromatic plane wave can be virtually absorbed by the system and stored within its volume. The analysis is developed by modelling the propagation of a normally impinging plane wave through its equivalent transmission line model terminated in an arbitrary reactive load, which in turn models the input impedance of the metasurface-based system under consideration. The study allows to determine a priori whether the metasurface-based system can support the virtual absorption or not by evaluating the time-constant from its equivalent circuit.
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来源期刊
EPJ Applied Metamaterials
EPJ Applied Metamaterials MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
3.10
自引率
6.20%
发文量
16
审稿时长
8 weeks
期刊最新文献
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