Xu He-Xiu, Hu Guangwei, Wang Yanzhao, Wang Chaohui, Wang Mingzhao, Wang Shaojie, Huang Yongjun, Genevet Patrice, Huang Wei, Qiu Cheng-Wei
Air and Missile Defense College, Air Force Engineering University, 710051, Xi'an, China.
Institute of Flexible Electronics, Northwestern Polytechnical University, 710072, Xi'an, China.
Light Sci Appl. 2021 Apr 8;10(1):75. doi: 10.1038/s41377-021-00507-8.
Electromagnetic metasurface cloaks provide an alternative paradigm toward rendering arbitrarily shaped scatterers invisible. Most transformation-optics (TO) cloaks intrinsically need wavelength-scale volume/thickness, such that the incoming waves could have enough long paths to interact with structured meta-atoms in the cloak region and consequently restore the wavefront. Other challenges of TO cloaks include the polarization-dependent operation to avoid singular parameters of composite cloaking materials and limitations of canonical geometries, e.g., circular, elliptical, trapezoidal, and triangular shapes. Here, we report for the first time a conformal-skin metasurface carpet cloak, enabling to work under arbitrary states of polarization (SOP) at Poincaré sphere for the incident light and arbitrary conformal platform of the object to be cloaked. By exploiting the foundry three-dimensional (3D) printing techniques to fabricate judiciously designed meta-atoms on the external surface of a conformal object, the spatial distributions of intensity and polarization of its scattered lights can be reconstructed exactly the same as if the scattering wavefront were deflected from a flat ground at any SOP, concealing targets under polarization-scanning detections. Two conformal-skin carpet cloaks working for partial- and full-azimuth plane operation are respectively fabricated on trapezoid and pyramid platforms via 3D printing. Experimental results are in good agreement with numerical simulations and both demonstrate the polarization-insensitive cloaking within a desirable bandwidth. Our approach paves a deterministic and robust step forward to the realization of interfacial, free-form, and full-polarization cloaking for a realistic arbitrary-shape target in real-world applications.
电磁超表面隐身衣为使任意形状的散射体不可见提供了一种替代范式。大多数变换光学(TO)隐身衣本质上需要波长尺度的体积/厚度,以便入射波能够有足够长的路径与隐身衣区域中的结构化超原子相互作用,从而恢复波前。TO隐身衣的其他挑战包括为避免复合隐身材料的奇异参数而依赖偏振的操作以及规范几何形状(例如圆形、椭圆形、梯形和三角形)的局限性。在此,我们首次报道了一种共形表皮超表面地毯隐身衣,它能够在庞加莱球上针对入射光的任意偏振态(SOP)以及待隐身物体的任意共形平台工作。通过利用铸造三维(3D)打印技术在共形物体的外表面上制造精心设计的超原子,其散射光的强度和偏振的空间分布可以被精确重建,就好像散射波前在任何SOP下都从平坦地面偏转一样,从而在偏振扫描检测下隐藏目标。通过3D打印分别在梯形和金字塔平台上制造了用于部分方位平面和全方位平面操作的两种共形表皮地毯隐身衣。实验结果与数值模拟结果吻合良好,两者均证明了在所需带宽内的偏振不敏感隐身特性。我们的方法为在实际应用中实现针对现实世界中任意形状目标的界面、自由形式和全偏振隐身迈出了确定性且稳健的一步。