论文标题

所有电介质单位电池优化结构的多方向斗篷设计

Multi-directional cloak design by all dielectric unit-cell optimized structure

论文作者

Ayik, Muratcan, Kurt, Hamza, Minin, Oleg V., Minin, Igor V., Turduev, Mirbek

论文摘要

在此手稿中,我们演示了光覆盖结构的设计和实验证明,该结构在多个方面掩盖了从入射平面波中掩盖完美的电导体(PEC)对象。高度反射散射PEC对象周围的介电调节是由用于多个掩饰目的的优化过程确定的。为了获得盖结构的多向效应,优化的切片是通过径向周长对称的。三维(3D)有限差分时间域方法与遗传优化集成在一起,以实现掩盖设计。为了克服光学范围内相应设备的技术问题并在实验上证明所提出的概念,我们的实验是在微波范围内的比例模型上进行的。拟议结构的缩放概念证明是通过三乳酸材料的3D打印来制造的,黄铜金属合金被用作微波实验的完美电导体。达到数值和实验结果之间的良好一致性。所提出的设计方法不仅限于多方向的光学披肩,而且还可以应用于处理纳米级电磁波以及其他类型的声波的不同掩饰场景。使用纳米技术,我们的规模概念证明研究将迈出下一步,朝着创建“光学掩盖”设备的设备迈出。

In this manuscript, we demonstrate the design and experimental proof of an optical cloaking structure which multi-directionally conceals a perfectly electric conductor (PEC) object from an incident plane wave. The dielectric modulation around the highly reflective scattering PEC object is determined by an optimization process for multi-directional cloaking purposes. And to obtain the multi-directional effect of the cloaking structure, an optimized slice is mirror symmetrized through a radial perimeter. Three-dimensional (3D) finite-difference time-domain method is integrated with genetic optimization to achieve cloaking design. In order to overcome the technological problems of the corresponding devices in the optical range and to experimentally demonstrate the proposed concept, our experiments were carried out on a scale model in the microwave range. The scaled proof-of-concept of proposed structure is fabricated by 3D printing of polylactide material, and the brass metallic alloy is used as a perfect electrical conductor for microwave experiments. A good agreement between numerical and experimental results is achieved. The proposed design approach is not restricted only to multi-directional optical cloaking but can also be applied for different cloaking scenarios dealing with electromagnetic waves in nanoscales as well as other types of such as acoustic waves. Using nanotechnology, our scale proof-of-concept research will take the next step towards the creation of "optical cloaking" devices.

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