Jiangxi Key Laboratory of Nanomaterials and Sensors, Provincial Key Laboratory of Optoelectronic and Telecommunication, College of Physics and Communication Electronics, Jiangxi Normal University, Nanchang 330022, Jiangxi, People's Republic of China.
Nanotechnology. 2020 Mar 13;31(11):115208. doi: 10.1088/1361-6528/ab5a00. Epub 2019 Nov 21.
We propose and numerically demonstrate a high-quality hybridized resonant platform, composed of a one-dimensional metal grating and a dielectric cavity. Under a moderate oblique illumination, an ultra-high spectral quality (Q) factor of 1375 is achieved, which shows orders of magnitude larger than that of the system under normal excitation. The high-Q mode results from the strong coupling effect between the surface plasmon polariton of the metal grating and the photonic mode of the dielectric cavity. Based on this hybridized plasmonic resonator, a high-performance sensing scheme with the spectral sensitivity (S) up to 800 nm/RIU (refractive index unit, RIU) is further introduced. Moreover, the figure of merit reaches 1337, indicating a new record for both the localized or propagating surface plasmons based sensors. These features could find applications in sensing and detecting devices, plasmonic switches, and light flow modulators.
我们提出并数值演示了一种高质量的混合共振平台,由一维金属光栅和介质腔组成。在适度的斜向照明下,实现了超高的光谱质量(Q)因子 1375,比正常激发下的系统高出几个数量级。这种高 Q 模式源于金属光栅的表面等离子体激元和介质腔的光子模式之间的强耦合效应。基于这种混合等离子体共振器,进一步引入了一种具有高达 800nm/RIU(折射率单位,RIU)光谱灵敏度(S)的高性能传感方案。此外,品质因数达到 1337,这表明基于局域或传播表面等离子体的传感器创下了新纪录。这些特性可应用于传感和检测设备、等离子体开关和光流调制器。