Xu Changqing, Chu Hongchen, Luo Jie, Hang Zhi Hong, Wu Ying, Lai Yun
Division of Computer, Electrical and Mathematical Science and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Saudi Arabia.
National Laboratory of Solid State Microstructures, School of Physics, and Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing 210093, China.
Phys Rev Lett. 2021 Sep 17;127(12):123902. doi: 10.1103/PhysRevLett.127.123902.
Electromagnetic void space is a medium, while geometrically occupying a finite volume of space, optically equivalent to an infinitesimal point, in which electromagnetic waves do not experience any phase accumulation. Here, we report the first realization of three-dimensional (3D) electromagnetic void space by an all-dielectric photonic crystal possessing vanishing permittivity and permeability simultaneously. The 3D electromagnetic void space offers distinctive functionalities inaccessible to its 2D or acoustic counterparts because of the fundamental changes in topology, which comes from the ascension of dimensionality as well as the transverse nature of electromagnetic waves. In particular, we demonstrate, both theoretically and experimentally, that the transmission through such a 3D void space is unaffected by its inner boundaries, but highly sensitive to the outer boundaries. This enables many applications such as the impurity "antidoping" effect, outer-boundary-controlled switching, and 3D perfect wave steering. Our work paves a road toward 3D exotic optics of an optically infinitesimal point.
电磁真空空间是一种介质,虽然在几何上占据有限的空间体积,但在光学上等效于一个无限小的点,其中电磁波不会经历任何相位积累。在此,我们报告了通过一种同时具有零介电常数和磁导率的全介质光子晶体首次实现三维(3D)电磁真空空间。由于拓扑结构的根本变化,3D电磁真空空间具有其二维或声学对应物所不具备的独特功能,这种拓扑结构的变化源于维度的提升以及电磁波的横向性质。特别是,我们通过理论和实验证明,通过这种3D真空空间的传输不受其内部边界的影响,但对外边界高度敏感。这使得许多应用成为可能,如杂质“反掺杂”效应、外边界控制的开关以及3D完美波控向。我们的工作为实现光学无限小点的3D奇异光学铺平了道路。