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High transmission of negative permittivity materials based on strong magnetic field coupling

机译:基于强磁场耦合的负介电材料的高透射率

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Materials with negative permittivity are opaque for electromagnetic wave such that the transmitted signal cannot travel through them. To combat this phenomenon, we propose a novel high transmission mechanism using periodic placed split-ring resonators and metallic wires to construct a transparent sandwich structure. This structure consists of three layers of materials, where the material with negative permittivity is sandwiched between the materials with high permittivity. With the given frequency, we firstly exploit the metallic wires and split-ring resonators to attain non-transparent negative permittivity and high permittivity, respectively. By effective medium theory, effective relative permittivity retrieved from these materials' S parameters is verified to be negative or high. Then a resonant tunneling of electromagnetic fields occurs in the proposed three-layer sandwich structure. Simulated and measured results show that this structure fulfills high transmission, although each single material layer is nearly opaque. In addition, this high transmission mechanism is characterized by strong magnetic field coupling and an optimized coupling distance. The high transmission phenomenon and resonant tunneling mechanism provide an idea of reference to realize perfect transmission through opaque materials, which is also realizable in infrared or optical regimes with appropriate designs.
机译:介电常数为负的材料对于电磁波而言是不透明的,因此传输的信号无法穿过它们。为了克服这种现象,我们提出了一种新颖的高传输机制,该机制使用周期性放置的开口环谐振器和金属线来构造透明的三明治结构。该结构由三层材料组成,其中具有负介电常数的材料夹在具有高介电常数的材料之间。在给定的频率下,我们首先利用金属线和开口环谐振器分别获得不透明的负介电常数和高介电常数。通过有效介质理论,从这些材料的S参数获得的有效相对介电常数被证实为负或高。然后,在提出的三层夹心结构中发生了电磁场的共振隧穿。模拟和测量结果表明,尽管每个材料层几乎都是不透明的,但该结构仍具有很高的透射率。此外,这种高传输机制的特点是强磁场耦合和优化的耦合距离。高传输现象和共振隧穿机制为通过不透明材料实现完美传输提供了参考思想,这也可以在红外或光学条件下通过适当的设计实现。

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