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含介电掺杂剂的磁性近零介电常数介质的电磁特性

Electromagnetic properties of magnetic epsilon-near-zero medium with dielectric dopants.

作者信息

Zhao Lin, Feng Yijun, Zhu Bo, Zhao Junming

出版信息

Opt Express. 2019 Jul 8;27(14):20073-20083. doi: 10.1364/OE.27.020073.

Abstract

Epsilon-and-mu-near-zero (EMNZ) medium which possessing close to zero permittivity and permeability has peculiar electromagnetic properties and can be utilized to design various electromagnetic functional devices. Recent theoretical research shows that EMNZ medium can be achieved by simply doping normal dielectric in an epsilon-near-zero (ENZ) medium, which is easier to obtain than EMNZ medium. Practically, the permittivity will cross zero in the terahertz regime for polar dielectrics and some semiconductors, and in the visible and ultraviolet for the noble metals. While in the microwave band, it is recently found that some magnetic materials can be used to realize the ENZ medium. Here in this paper, we extend the doping theory and propose the similar way for realizing EMNZ property in magnetic ENZ medium by adding dielectric dopant. Both the theoretical analysis and full wave simulation show EMNZ can be achieved by adjusting the parameters of normal dielectric dopants, such as the size, relative permittivity, as well as the number of dopants in a magnetic ENZ with arbitrary value of permeability. To verify the proposed theory, a practical electromagnetic tunneling structure is designed and tested based on an existing magnetic ENZ material through proper dielectric doping. The proposed design method may provide realistic and meaningful guidance for the realization and application of practical EMNZ medium at microwave frequency.

摘要

具有接近零介电常数和磁导率的ε-近零和μ-近零(EMNZ)介质具有独特的电磁特性,可用于设计各种电磁功能器件。最近的理论研究表明,通过在ε-近零(ENZ)介质中简单地掺杂普通电介质就可以实现EMNZ介质,而这比EMNZ介质更容易获得。实际上,对于极性电介质和一些半导体,在太赫兹频段介电常数会穿过零;对于贵金属,在可见光和紫外频段介电常数会穿过零。而在微波频段,最近发现一些磁性材料可用于实现ENZ介质。在本文中,我们扩展了掺杂理论,并提出了通过添加电介质掺杂剂在磁性ENZ介质中实现EMNZ特性的类似方法。理论分析和全波仿真均表明,通过调整普通电介质掺杂剂的参数,如尺寸、相对介电常数以及具有任意磁导率值的磁性ENZ中掺杂剂的数量,就可以实现EMNZ。为了验证所提出的理论,基于现有的磁性ENZ材料通过适当的电介质掺杂设计并测试了一种实际的电磁隧道结构。所提出的设计方法可能为微波频率下实际EMNZ介质的实现和应用提供现实且有意义的指导。

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