论文标题

在动态界面处的广义总内反射

Generalized Total Internal Reflection at Dynamic Interfaces

论文作者

Li, Zhiyu, Ma, Xikui, Bahrami, Amir, Deck-Léger, Zoé-Lise, Caloz, Christophe

论文摘要

时空超材料结构和系统领域的最新研究发展提出了有关在时空调节的存在下如何改变基本现象物理学的新问题。在这种情况下,我们介绍了在不同的动态接口处的总内部反射(TIR)现象的广义和比较描述。此类接口包括,除了对应于移动物体(移动接口 - 移动物质系统)边界的经典界面外,通过电磁参数的行进波步骤调制形成的接口(例如,屈光索引)(移动接口 - 平稳物质系统)以及移动媒体媒体介质(移动媒介系统(移动媒介系统)之间的固定接口)。我们首先使用传输波的灭绝作为TIR的标准解决问题,并应用相对框架跳跃的常规技术(在实验室和休息框架之间),从而导致相关关键的封闭式公式(发生率,反射,相反射,相折射和功率折射)角度。然后,我们介绍了动态界面和传输波之间的追赶限制的概念,作为临界角度的替代标准。我们使用这种方法来分析验证临界角度公式,通过全波(FDTD)分析进一步验证,并使用Fresnel-Fizeau-Fizeau阻力和时空频率过渡注意事项来解释相关物理。这些结果可能会发现超快速光学,重力类似物和量子处理中的各种应用。

Recent research developments in the area of spacetime metamaterial structures and systems have raised new questions as to how the physics of fundamental phenomena is altered in the presence of spacetime modulation. In this context, we present a generalized and comparative description of the phenomenon of total internal reflection (TIR) at different dynamic interfaces. Such interfaces include, beyond the classical interfaces corresponding to the boundaries of moving bodies (moving interface -- moving matter systems), interfaces formed by a traveling-wave step modulation of an electromagnetic parameter (e.g., refractive index) (moving interface -- stationary matter systems) and fixed interfaces between moving-matter media (stationary interface -- moving matter systems). We first resolve the problem using the evanescence of the transmitted wave as the criterion for TIR and applying the conventional technique of relative frame hopping (between the laboratory and rest frames), which results in closed-form formulas for the relevant critical (incidence, reflection, phase refraction and power refraction) angles. We then introduce the concept of catch-up limit between the dynamic interface and the transmitted wave as an alternative criterion for the critical angle. We use this approach both to analytically verify the critical angle formulas, further validated by full-wave (FDTD) analysis, and to explain the related physics, using Fresnel-Fizeau drag and spacetime frequency transition considerations. These results might find various applications in ultra-fast optics, gravity analogs and quantum processing.

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