论文标题

灵活的Terahertz光子光笼模块,用于核内感应和高温应用

Flexible terahertz photonic light-cage modules for in-core sensing and high temperature applications

论文作者

Stefani, Alessio, Kuhlmey, Boris T., Digweed, Justin, Davies, Benjamin, Zreiqat, Hala, Mirkhalaf, Mohammad, Tuniz, Alessandro

论文摘要

Terahertz(THZ)技术是一个不断增长的多学科研究领域,尤其是用于传感和电信。在过去的几年中,许多THZ波导都出现了,它们将补充现有和笨重的自由空间设置的功能。但是,在大多数设计中,指南区域与周围环境进行物理分离,使光与环境效率低下之间的相互作用。我们提出了以THZ频率运行的光子THZ灯笼(THZLC),由独立的介电链组成,它们在空心芯内引导光线,并立即进入环境。我们通过使用单个设计和四种不同的聚合物和陶瓷材料来显示该概念的多功能性和设计灵活性,这些cm长度尺度模块是刚性,灵活或对高温具有抗性的。我们表征了前者和弯曲的波导的传播和弯曲 - 前者和弯曲波导,前者的级〜1 db/cm,而后者则在10 cm以下的Bend Radii中〜2-8 db/cm,并且在很大程度上独立于材料。我们的传输实验在波导输出处得到了近场测量值的补充,这揭示了对直thzlcs的反弹力指导,并且在弯曲波导中的变形基本模式与数值保形映射模拟一致。我们表明这些THZLC可以用作:(i)柔性,可重构和可弯曲的模块化组件; (ii)直接在空心芯内包含的结构的核心传感器; (iii)高温传感器,具有潜在的工业监测应用。这些THZLC是一种新颖且有用的补充,用于不断增长的THZ波导图书馆,与可重构,无衍射传播的波导样优势结合在一起,以及直接暴露于周围环境的自由空间的即时性。

Terahertz (THz) technology is a growing and multi-disciplinary research field, particularly for sensing and telecommunications. A number of THz waveguides have emerged over the past years, which are set to complement the capabilities of existing and bulky free space setups. In most designs however, the guiding region is physically separated from the surroundings, making interactions between light and the environment inefficient. We present photonic THz light cages (THzLCs) operating at THz frequencies, consisting of free-standing dielectric strands, which guide light within a hollow core with immediate access to the environment. We show the versatility and design flexibility of this concept, by 3D-printing several cm-length-scale modules using a single design and four different polymer- and ceramic- materials, which are either rigid, flexible, or resistant to high temperatures. We characterize propagation- and bend-losses for straight- and curved- waveguides, which are of order ~1 dB/cm in the former, and ~2-8 dB/cm in the latter for bend radii below 10 cm, and largely independent of the material. Our transmission experiments are complemented by near-field measurements at the waveguide output, which reveal antiresonant guidance for straight THzLCs, and a deformed fundamental mode in the bent waveguides, in agreement with numerical conformal mapping simulations. We show that these THzLCs can be used either as: (i) flexible, reconfigurable, and bendable modular assemblies; (ii) in-core sensors of structures contained directly inside the hollow core; (iii) high-temperature sensors, with potential applications in industrial monitoring. These THzLCs are a novel and useful addition to the growing library of THz waveguides, marrying the waveguide-like advantages of reconfigurable, diffractionless propagation, with the free-space-like immediacy of direct exposure to the surrounding environment.

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