论文标题
拓扑奇异性的拓扑奇异性
Topological Polarization Singularities in Metaphotonics
论文作者
论文摘要
矢量电磁场的极化奇异性位于未定义极化椭圆的特性的位置(例如点,线或表面)。它们表现为圆形和线性极化,分别为半肌轴和极化椭圆的正常向量变为不确定。在1830年代首次观察到的圆锥形衍射,极化奇异性领域已被许多波动光学的先驱系统重塑并加深。与其他外来现象(例如非热性和拓扑结构)一起,极化奇异性被引入了纳米光子学的充满活力的领域中,从而使纳米级轻相互作用的空前挠性为操纵。在这里,我们回顾了有关突袭中极化奇异性的产生和观察的最新结果。我们从MIE理论中对极化奇异性的讨论开始,其中从局部和全局极化特性的角度探索了电气和磁多物。然后,我们继续讨论各种光子晶体结构,近场和远场模式都表现出以整数Poincare或更一般的Half-Integer Hopf指数(拓扑费)为特征的各种极化奇异性。接下来,我们回顾了标量波光学中从极化到相位奇异性的转换的最新研究,证明了如何利用连续体中的绑定状态以产生各种电荷的直接光学涡旋。在整个论文中,我们讨论并突出了几个基本概念,并展示了它们与代码学的紧密联系和特殊联系。我们认为,极化奇异性可以为基本研究及其实际应用提供新的观点。
Polarization singularities of vectorial electromagnetic fields locate at the positions (such as points, lines, or surfaces) where properties of polarization ellipses are not defined. They are manifested as circular and linear polarization, for which respectively the semi-major axes and normal vectors of polarization ellipses become indefinite. First observed in conical diffraction in the 1830s, the field of polarization singularities has been systematically reshaped and deepened by many pioneers of wave optics. Together with other exotic phenomena such as non-Hermiticity and topology, polarization singularities have been introduced into the vibrant field of nanophotonics, rendering unprecedented flexibilities for manipulations of light-matter interactions at the nanoscale. Here we review the recent results on the generation and observation of polarization singularities in metaphotonics. We start with the discussion of polarization singularities in the Mie theory, where both electric and magnetic multipoles are explored from perspectives of local and global polarization properties. We then proceed with the discussion of various photonic-crystal structures, for which both near- and far-field patterns manifest diverse polarization singularities characterized by the integer Poincare or more general half-integer Hopf indices (topological charges). Next, we review the most recent studies of conversions from polarization to phase singularities in scalar wave optics, demonstrating how bound states in the continuum can be exploited to generate directly optical vortices of various charges. Throughout our paper, we discuss and highlight several fundamental concepts and demonstrate their close connections and special links to metaphotonics. We believe polarization singularities can provide novel perspectives for light-matter manipulation for both fundamental studies and their practical applications.