Liu Bo, Tang Chaojun, Chen Jing, Yan Zhendong, Zhu Mingwei, Sui Yongxing, Tang Huang
School of Mathematics and Physics, Jiangsu University of Technology, Changzhou, 213001, China.
Center for Optics and Optoelectronics Research, Collaborative Innovation Center for Information Technology in Biological and Medical Physics, College of Science, Zhejiang University of Technology, Hangzhou, 310023, China.
Nanoscale Res Lett. 2017 Nov 9;12(1):586. doi: 10.1186/s11671-017-2350-z.
We numerically investigate the coupling effects of surface plasmon polaritons (SPPs) and magnetic dipole (MD) resonances in metamaterials, which are composed of an Ag nanodisk array and a SiO spacer on an Ag substrate. The periodicity of the Ag nanodisk array leads to the excitation of SPPs at the surface of the Ag substrate. The near-field plasmon interactions between individual Ag nanodisks and the Ag substrate form MD resonances. When the excitation wavelengths of SPPs are tuned to approach the position of MD resonances by changing the array period of Ag nanodisks, SPPs and MD resonances are coupled together into two hybridized modes, whose positions can be well predicted by a coupling model of two oscillators. In the strong coupling regime of SPPs and MD resonances, the hybridized modes exhibit an obvious anti-crossing, resulting into an interesting phenomenon of Rabi splitting. Moreover, the magnetic fields under the Ag nanodisks are greatly enhanced, which may find some potential applications, such as magnetic nonlinearity.
我们对超材料中表面等离激元极化激元(SPP)与磁偶极(MD)共振的耦合效应进行了数值研究,该超材料由银纳米盘阵列以及银基底上的二氧化硅间隔层组成。银纳米盘阵列的周期性导致银基底表面SPP的激发。单个银纳米盘与银基底之间的近场等离激元相互作用形成MD共振。当通过改变银纳米盘的阵列周期将SPP的激发波长调谐至接近MD共振位置时,SPP与MD共振耦合在一起形成两种杂化模式,其位置可通过双振子耦合模型很好地预测。在SPP与MD共振的强耦合区域,杂化模式呈现出明显的反交叉现象,从而产生有趣的拉比分裂现象。此外,银纳米盘下方的磁场大幅增强,这可能会有一些潜在应用,比如磁非线性。