Institute of Physics, University of Rostock, 18059 Rostock, Germany.
Department of Physics and Astronomy, Julius-Maximilians-Universität Würzburg, Am Hubland, 97074 Würzburg, Germany.
Science. 2020 Apr 17;368(6488):311-314. doi: 10.1126/science.aaz8727. Epub 2020 Mar 26.
Dissipation is a general feature of non-Hermitian systems. But rather than being an unavoidable nuisance, non-Hermiticity can be precisely controlled and hence used for sophisticated applications, such as optical sensors with enhanced sensitivity. In our work, we implement a non-Hermitian photonic mesh lattice by tailoring the anisotropy of the nearest-neighbor coupling. The appearance of an interface results in a complete collapse of the entire eigenmode spectrum, leading to an exponential localization of all modes at the interface. As a consequence, any light field within the lattice travels toward this interface, irrespective of its shape and input position. On the basis of this topological phenomenon, called the "non-Hermitian skin effect," we demonstrate a highly efficient funnel for light.
耗散是非厄米系统的一个普遍特征。但非厄米性并非不可避免的麻烦,它可以被精确控制,并因此应用于复杂的应用中,例如具有更高灵敏度的光学传感器。在我们的工作中,我们通过调整最近邻耦合的各向异性来实现非厄米光子网格晶格。界面的出现导致整个本征模谱完全崩溃,导致所有模式在界面处的指数局域化。结果,晶格内的任何光场都会朝着这个界面传播,而不论其形状和输入位置如何。基于这种被称为“非厄米skin 效应”的拓扑现象,我们展示了一种高效的光漏斗。