论文标题

可调节的纳米光子学通过硫代构化材料启用

Tunable nanophotonics enabled by chalcogenide phase-change materials

论文作者

Abdollahramezani, Sajjad, Hemmatyar, Omid, Taghinejad, Hossein, Krasnok, Alex, Kiarashinejad, Yashar, Zandehshahvar, Mohammadreza, Alu, Andrea, Adibi, Ali

论文摘要

纳米光子学在塑造亚波长度中的光流方面具有独特的能力,因此引起了密集的关注。 Metasurfaces(MSS)和光子综合电路(PIC)可以实现质量可容纳,具有成本效益且高效的平坦光学组件,用于成像,传感和通信。为了使具有多功能功能的纳米素化学,已引入了Chalcogenide相位变化材料(PCM),作为可调和可重构纳米光子框架的有前途的平台。将非挥发性硫化硫化硫化的PCM集成具有独特的特性,例如剧烈的光学对比度,快速开关速度和长期稳定性,可以为更传统的静态纳米光子平台提供实质性的重新配置。在这篇综述中,我们讨论了最新的开发项目以及使用Chalcogenide PCMS可调MS和图片的新兴趋势。我们概述了公认的葡萄干区PCMS类别的独特材料特性,结构转化,电形和热形效应。还讨论了新兴的基于学习的深度学习方法,以优化可重构的MSS以及对光结合相互作用的分析。审查是通过讨论可调纳米光学学的现有挑战的结论,以及对该有前途领域的可能发展的观点。

Nanophotonics has garnered intensive attention due to its unique capabilities in molding the flow of light in the subwavelength regime. Metasurfaces (MSs) and photonic integrated circuits (PICs) enable the realization of mass-producible, cost-effective, and highly efficient flat optical components for imaging, sensing, and communications. In order to enable nanophotonics with multi-purpose functionalities, chalcogenide phase-change materials (PCMs) have been introduced as a promising platform for tunable and reconfigurable nanophotonic frameworks. Integration of non-volatile chalcogenide PCMs with unique properties such as drastic optical contrasts, fast switching speeds, and long-term stability grants substantial reconfiguration to the more conventional static nanophotonic platforms. In this review, we discuss state-of-the-art developments as well as emerging trends in tunable MSs and PICs using chalcogenide PCMs. We outline the unique material properties, structural transformation, electro-optic, and thermo-optic effects of well-established classes of chalcogenide PCMs. The emerging deep learning-based approaches for the optimization of reconfigurable MSs and the analysis of light-matter interactions are also discussed. The review is concluded by discussing existing challenges in the realization of adjustable nanophotonics and a perspective on the possible developments in this promising area.

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