Chu Hongchen, Zhang Haoyang, Zhang Yang, Peng Ruwen, Wang Mu, Hao Yang, Lai Yun
National Laboratory of Solid State Microstructures, School of Physics, and Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing, China.
School of Electronic Engineering and Computer Science, Queen Mary University of London, London, UK.
Nat Commun. 2021 Jul 26;12(1):4523. doi: 10.1038/s41467-021-24763-9.
Reflection inherently occurs on the interfaces between different media. In order to perfectly manipulate waves on the interfaces, integration of antireflection function in metasurfaces is highly desired. In this work, we demonstrate an approach to realize exceptional metasurfaces that combine the two vital functionalities of antireflection and arbitrary phase manipulation in the deep subwavelength scale. Such ultrathin devices confer reflection-less transmission through impedance-mismatched interfaces with arbitrary wavefront shapes. Theoretically and experimentally, we demonstrate a three-layer antireflection metasurface that achieves an intriguing phenomenon: the simultaneous elimination of the reflection and refraction effects on a dielectric surface. Incident waves transmit straightly through the dielectric surface as if the surface turns invisible. We further demonstrate a wide variety of applications such as invisible curved surfaces, "cloaking" of dielectric objects, reflection-less negative refraction and flat axicons on dielectric-air interfaces, etc. The coalescence of antireflection and wavefront controllability in the deep subwavelength scale brings new opportunities for advanced interface optics with high efficiency and great flexibility.
反射本质上发生在不同介质的界面上。为了在界面上完美地操控波,人们非常希望在超表面中集成抗反射功能。在这项工作中,我们展示了一种方法来实现特殊的超表面,该超表面在深亚波长尺度上结合了抗反射和任意相位操控这两种重要功能。这种超薄器件能够通过具有任意波前形状的阻抗失配界面实现无反射传输。在理论和实验上,我们展示了一种三层抗反射超表面,它实现了一个有趣的现象:在电介质表面同时消除反射和折射效应。入射波直接穿过电介质表面,就好像该表面变得不可见了一样。我们进一步展示了各种各样的应用,如隐形曲面、电介质物体的“隐身”、电介质 - 空气界面上的无反射负折射和平板轴棱锥等。在深亚波长尺度上抗反射和波前可控性的结合为高效且极具灵活性的先进界面光学带来了新机遇。