太赫兹辐射
厄米矩阵
特征向量
光子学
弗洛奎特理论
酉变换
调制(音乐)
解耦(概率)
物理
光学
量子力学
非线性系统
量子
声学
工程类
控制工程
作者
Zhongyi Yu,Weibao He,Siyang Hu,Ziheng Ren,Shun Wan,Xiang’ai Cheng,Yuze Hu,Tian Jiang
标识
DOI:10.1002/advs.202402615
摘要
Abstract Non‐Hermitian degeneracies, also known as exceptional points (EPs), have presented remarkable singular characteristics such as the degeneracy of eigenvalues and eigenstates and enable limitless opportunities for achieving fascinating phenomena in EP photonic systems. Here, the general theoretical framework and experimental verification of a non‐Hermitian metasurface that holds a pair of anti‐chiral EPs are proposed as a novel approach for efficient terahertz (THz) switching. First, based on the Pancharatnam–Berry (PB) phase and unitary transformation, it is discovered that the coupling variation of ±1 spin eigenstates will lead to asymmetric modulation in two orthogonal linear polarizations (LP). Through loss‐induced merging of a pair of anti‐chiral EPs, the decoupling of ±1 spin eigenstates are then successfully realized in a non‐Hermitian metasurface. Final, the efficient THz modulation is experimentally demonstrated, which exhibits modulation depth exceeding 70% and Off‐On‐Off switching cycle less than 9 ps in one LP while remains unaffected in another one. Compared with conventional THz modulation devices, the metadevice shows several figures of merits, such as a single frequency operation, high modulation depth, and ultrafast switching speed. The proposed theory and loss‐induced non‐Hermitian device are general and can be extended to numerous photonic systems varying from microwave, THz, infrared, to visible light.
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