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A versatile smart transformation optics device with auxetic elasto-electromagnetic metamaterials

机译:带有膨胀弹性电磁超材料的多功能智能变换光学装置

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摘要

Synergistic integration of electromagnetic (EM) and mechanical properties of metamaterials, a concept known as smart metamaterials, promises new applications across the spectrum, from flexible waveguides to shape-conforming cloaks. These applications became possible thanks to smart transformation optics (STO), a design methodology that utilizes coordinate transformations to control both EM wave propagation and mechanical deformation of the device. Here, we demonstrate several STO devices based on extremely auxetic (Poisson ratio −1) elasto-electromagnetic metamaterials, both of which exhibit enormous flexibility and sustain efficient operation upon a wide range of deformations. Spatial maps of microwave electric fields across these devices confirm our ability to deform carpet cloaks, bent waveguides, and potentially other quasi-conformal TO-based devices operating at 7 ~ 8 GHz. These devices are each fabricated from a single sheet of initially uniform (double-periodic) square-lattice metamaterial, which acquires the necessary distribution of effective permittivity entirely from the mechanical deformation of its boundary. By integrating transformation optics and continuum mechanics theory, we provide analytical derivations for the design of STO devices. Additionally, we clarify an important point relating to two-dimensional STO devices: the difference between plane stress and plane strain assumptions, which lead to elastic metamaterials with Poisson ratio −1 and −∞, respectively.
机译:超材料的电磁(EM)和机械性能的协同集成(一种称为智能超材料的概念)有望在整个频谱中实现新的应用,从柔性波导到符合形状的斗篷。借助智能转换光学器件(STO),这些应用成为可能。智能转换光学器件(STO)是一种利用坐标转换来控制EM波传播和设备机械变形的设计方法。在这里,我们演示了几种基于极端膨胀(泊松比-1)弹性电磁超材料的STO设备,这两种设备均显示出极大的灵活性,并在各种变形下均能高效运行。这些设备上的微波电场的空间图证实了我们能够变形地毯,弯曲的波导以及可能工作在7〜8 GHz的其他准保形TO的设备的能力。这些器件均由最初均一的(双周期)方格超材料的单片制成,该材料完全通过其边界的机械变形获得有效介电常数的必要分布。通过整合转换光学和连续力学原理,我们为STO设备的设计提供了分析推导。此外,我们阐明了与二维STO装置有关的重要点:平面应力和平面应变假设之间的差异,这分别导致泊松比为-1和-∞的弹性超材料。

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