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基于可调谷扭结态和谷极化手性边缘态的可重构拓扑波路由

Reconfigurable topological wave routing based on tunable valley kink states and valley-polarized chiral edge states.

作者信息

Han Jianfei, Liang Feng, Zhao Yulin, Wang Xiangru, Zhao Deshuang, Wang Bing-Zhong

出版信息

Opt Express. 2024 Jul 15;32(15):26819-26832. doi: 10.1364/OE.529005.

DOI:10.1364/OE.529005
PMID:39538536
Abstract

Valley kink states and valley-polarized chiral edge states, whose topologically protected one-way propagation property provides a promising solution for manipulating light waves, have recently attracted considerable attention in topological photonics. However, it remains a great challenge to realize flexibly tunable dispersion for two different topological states and to develop a dynamically controllable topological photonic platform for switching topological wave routing. In this work, we propose a reconfigurable topological wave routing structure in the telecommunication frequency range, where phase-change material SbS cylinders with tunable refractive index are embedded into each topological channel to dynamically tune the dispersion of topological edge states. Via switching the phase states of SbS between amorphous and crystalline, we numerically demonstrate some unique applications of the proposed topological photonic crystals, such as topological optical switches, dual-channel selective transport, and controllable multi-channel intersection waveguides. More importantly, by digitally encoding each waveguide channel without the requirement of controlling each unit cell in the bulk domain, the proposed topological photonic platform provides a convenient and easy-to-implement solution for achieving dynamically reconfigurable topological wave routing propagation. Besides, the unique features of immunity against bending interface with disorders demonstrate the robustness of the topological wave propagation. Our proposed topological photonic platform has potential applications for designing intelligent photonic devices and opens up an avenue for advanced integrated photonic systems with reconfigurability.

摘要

谷扭结态和谷极化手性边缘态因其拓扑保护的单向传播特性为光波操控提供了一个有前景的解决方案,最近在拓扑光子学中引起了广泛关注。然而,实现两种不同拓扑态的灵活可调色散以及开发一个用于切换拓扑波路由的动态可控拓扑光子平台仍然是一个巨大的挑战。在这项工作中,我们提出了一种在电信频率范围内的可重构拓扑波路由结构,其中具有可调折射率的相变材料SbS圆柱体被嵌入到每个拓扑通道中,以动态调节拓扑边缘态的色散。通过在非晶态和晶态之间切换SbS的相态,我们通过数值模拟展示了所提出的拓扑光子晶体的一些独特应用,如拓扑光开关、双通道选择性传输和可控多通道交叉波导。更重要的是,通过对每个波导通道进行数字编码,而无需控制体域中的每个晶胞,所提出的拓扑光子平台为实现动态可重构拓扑波路由传播提供了一种方便且易于实现的解决方案。此外,对具有无序的弯曲界面免疫的独特特性证明了拓扑波传播的鲁棒性。我们提出的拓扑光子平台在设计智能光子器件方面具有潜在应用,并为具有可重构性的先进集成光子系统开辟了一条途径。

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