论文标题

由基于电路的磁双曲线波导实现的小型向后耦合器

Miniaturized backward coupler realized by the circuit-based magnetic hyperbolic waveguide

论文作者

Guo, Zhiwei, Song, Juan, Jiang, Haitao, Chen, Hong

论文摘要

平面波导可以限制电磁波在特定方向上的传输,并在过滤器,传感器和能量转移设备中具有广泛的应用。但是,鉴于对平面综合光子学的需求不断增长,需要新的波导具有出色的特征,例如更多的功能,更高的效率和较小的尺寸。在这项工作中,我们报告了由基于电路的磁双曲线不材料(HMM)制造的亚波长平面微波炉波导的实验结果,并发展了相关的理论。 HMM是一种各向异性超材料的特殊类型,其同源轮廓(IFC)采用开放型肌动物的形式。由于开放分散的IFC,HMMS支持具有较大有效折射率的高k模式,这使得平面双曲线波导可以小型化。特别是,与传统的电介质平板波导相反,双曲线引导模式的组速度是负的 - 可以利用,以实现电磁波的向后传播。此外,我们研究了异常的光子自旋霍尔效应,并在实验上证明了基于双曲线波导的超级反向向后耦合器。实验结果与数值模拟一致。这项工作不仅揭示了基于电路的平台在引导模式的传播和耦合的实验研究中的重要潜力,而且还促进了在微波制度中对HMM的使用,用于众多集成功能设备。

Planar waveguides can limit the transmission of electromagnetic waves in a specific direction and have a wide range of applications in filters, sensors, and energy-transfer devices. However, given the increasing demand for planar integrated photonics, new waveguides are required with excellent characteristics such as more functionality, greater efficiency, and smaller size. In this work, we report the experimental results for a subwavelength planar microwave-regime waveguide fabricated from circuit-based magnetic hyperbolic metamaterial (HMM) and develop the associated theory. HMM is a special type of anisotropic metamaterial whose isofrequency contour (IFC) takes the form of an open hyperboloid. Because of the open-dispersion IFCs, HMMs support propagating high-k modes with large effective refractive indices, which allows planar hyperbolic waveguides to be miniaturized. In particular, as opposed to the traditional dielectric slab waveguide, the group velocity of the hyperbolic guided modes is negative-a characteristic that can be exploited to realize the backward propagation of electromagnetic waves. Furthermore, we study the abnormal photonic spin Hall effect and experimentally demonstrate an ultracompact backward coupler based on hyperbolic waveguides. The experimental results are consistent with numerical simulations. This work not only reveals the significant potential of circuit-based platforms for the experimental study of the propagation and coupling of guided modes but also promotes the use of HMMs in the microwave regime for numerous integrated functional devices.

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