电介质
电场
偶极子
物理
谐振器
纳米光子学
光学
折射率
拉曼散射
半最大全宽
领域(数学)
拉曼光谱
力矩(物理)
电偶极矩
硅
Q系数
近场和远场
光电子学
经典力学
量子力学
纯数学
数学
作者
Xiangpeng Liu,Junqiao Wang,Jing Xiong,Qiaoqiao Wang,Hao Zhang,Jingyi Sun
出处
期刊:Physica Scripta
[IOP Publishing]
日期:2024-04-05
卷期号:99 (5): 055552-055552
被引量:9
标识
DOI:10.1088/1402-4896/ad3b51
摘要
Abstract In the field of nanophotonics, the manipulation of light using high refractive index dielectric materials has garnered significant attention in recent years. This occurs because dielectric materials with a high refractive index demonstrate lower losses in comparison to metallic plasmonic materials. Furthermore, the interference between internal toroidal dipole moment and electric dipole moment leads to destructive interference in the radiation field, resulting in the formation of an anapole state and localization of energy in the near-field. In this work, we initially excite the anapole state in a silicon nanodisk with a periodic nanostructured disk. By introducing a cross slit and adjusting the structural parameters, the anapole state is further optimized, and achieving highly concentrated near-field energy within the cross air slit of the silicon nanodisk. Specially designed, with a full width at halfmaximum ( FWHM ) of the transmitted spectrum of only 0.09 nm, and a Q factor of up to 9745, close to 10 4 . Additionally, the structure can produce up to 571 times the electric field enhancement. The remarkable performance of a high Q factor and localized near-field energy holds great potential for various applications, including enhancing nonlinear effects, surface enhanced Raman scattering (SERS) and designing nanolasers.
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