All-Dielectric Metasurface-Based Gap Waveguides

IF 3.9 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Vladimir R. Tuz, Vyacheslav V. Khardikov, Izzatjon Allayarov, Antonio Calà Lesina, Andrey B. Evlyukhin
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引用次数: 0

Abstract

The development of modern optical communication systems requires specific waveguides, given that the widely used fiber-optic components are poorly integrated with planar technologies. For planarization in the millimeter-wave and subterahertz bands, so-called gap waveguides are proposed, offering low-loss performance and cost-efficient manufacturing. Hence, the utilization of this technology in the optical range is very promising. Herein, a strategy for designing gap waveguides made of two metasurfaces composed of dielectric disk-shaped resonators operated in hybrid HE (magnetic dipole) and EH (electric dipole) modes is proposed. The coupled dipole model is applied to the complex multiple-scattering problem by substituting each resonator as an electric and magnetic dipole, providing equations for the efficient calculation of metasurface reflection and transmission properties. It is demonstrated that with the correct choice of metasurface geometry providing their resonant reflection conditions, a waveguide channel can be implemented between a pair of metasurfaces, which allows propagation of the transverse electric and transverse magnetic waves similar to those of a parallel plate waveguide with perfectly conducting either electric or magnetic walls. This approach may be seen as a novel metasurface-based waveguide structure that uses flexibly mediated boundary conditions to control electromagnetic wave propagation.

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全介电超表面间隙波导
现代光通信系统的发展需要特定的波导,因为广泛使用的光纤元件与平面技术的集成很差。对于毫米波和次太赫兹波段的平面化,提出了所谓的间隙波导,提供低损耗性能和成本效益的制造。因此,该技术在光学范围内的应用是非常有前景的。本文提出了一种由介电盘状谐振器组成的两个超表面组成的间隙波导的设计策略,该超表面以混合HE(磁偶极子)和EH(电偶极子)模式工作。将耦合偶极子模型应用于复杂的多重散射问题,将每个谐振腔替换为电偶极子和磁偶极子,为有效计算超表面反射和透射特性提供了方程。结果表明,通过正确选择具有谐振反射条件的超表面,可以在一对超表面之间实现波导通道,从而使横向电磁波和横向电磁波的传播类似于具有完美导电或磁壁的平行板波导。这种方法可以看作是一种新型的基于超表面的波导结构,它使用灵活介导的边界条件来控制电磁波的传播。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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