作者单位
摘要
1 西北工业大学物理科学与技术学院,陕西 西安 710072
2 军事科学院国防科技创新研究院,北京 100071
奇异点是非厄米系统中的奇点,由两个或多个特征值及其相应的特征向量同时简并产生。超表面是在亚波长尺度上构建的二维人工电磁材料,其结构和性能的人工可设计性为研究非厄米现象提供了新的途径。本文首先介绍了非厄米系统和奇异点的基本理论并概述了奇异点的最新研究进展,之后介绍了超表面奇异点太赫兹传感的研究进展,最后总结了奇异点传感仍然存在的问题,并展望其发展趋势。
超表面 奇异点 太赫兹 传感 
激光与光电子学进展
2024, 61(3): 0316003
Author Affiliations
Abstract
1 Research & Development Institute in Shenzhen, Key Laboratory of Space Applied Physics and Chemistry, Ministry of Education, and Department of Applied Physics, School of Natural and Applied Sciences, Northwestern Polytechnical University, Xi’an 710072, China
2 School of Mechanical Engineering, Northwestern Polytechnical University, Xi’an 710072, China
3 e-mail: fuquanhong@nwpu.edu.cn
4 e-mail: fuli.zhang@nwpu.edu.cn
The active control of electromagnetic response in metamaterial and mutual coupling between resonant building blocks is of fundamental importance in realizing high-quality metamaterials. In this work, we propose and experimentally demonstrate the tunabilities of symmetry-broken metasurfaces made of orthogonal electric dipolar resonators. The metasurface with vertical and horizontal wires is integrated with a PIN diode for active control. It is found that the electromagnetically induced transparency (EIT)-like spectrum appears due to the destructive or constructive interferences between the two electric dipolar modes when the structural symmetry broken is introduced to the metasurface. Different from previous works on the EIT-like effect, there is only electric dipole response in our metasuface. The microscopic response of the metasurface is numerically calculated to illustrate the mode coupling between the orthogonal electric dipolar resonators. By applying temporal coupled-mode theory, the interaction between the electromagnetic wave and the symmetry-broken metasurface is described, and the characteristic parameters of the resonator system, which determine the electromagnetic response of the metasurface, are acquired.
Photonics Research
2019, 7(9): 09000955

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!