Yang Liu, Wang Jicheng, Yang Li-Zhi, Hu Zheng-Da, Wu Xiaojun, Zheng Gaige
School of Science, Jiangsu Provincial Research Center of Light Industrial Optoelectronic Engineering and Technology, Jiangnan University, Wuxi, 214122, China.
State Key Laboratory of Millimeter Waves, Southeast University, Nanjing, 210096, China.
Sci Rep. 2018 Feb 7;8(1):2560. doi: 10.1038/s41598-018-20952-7.
We observe and analyze multiple Fano resonances and the plasmon-induced transparency (PIT) arising from waveguidecoupled surface plasmon resonance in a metal-dielectric Kretschmann configuration. It is shown that the simulation results for designed structures agree well with those of the dispersion relation of waveguide theory. We demonstrate that the coupling between the surface plasmon polariton mode and multi-order planar waveguide modes leads to multiple Fano resonances and PIT. The obtained results show that the number of Fano resonances and the linewidth of resonances depend on two structural parameters, the Parylene C and SiO layers, respectively. For the sensing action of Fano resonance, the figure of merit for the sensitivity by intensity is estimated to be 44 times higher than that of conventional surface plasmon resonance sensors. Our research reveals the potential advantage of sensors with high sensitivity based on coupling between the SPP mode and multi-order PWG modes.
我们观察并分析了在金属 - 电介质Kretschmann结构中,由波导耦合表面等离子体共振产生的多个法诺共振和等离子体诱导透明(PIT)现象。结果表明,所设计结构的模拟结果与波导理论色散关系的结果吻合良好。我们证明,表面等离子体激元模式与多阶平面波导模式之间的耦合导致了多个法诺共振和PIT。所得结果表明,法诺共振的数量和共振线宽分别取决于两个结构参数,即聚对二甲苯C层和SiO层。对于法诺共振的传感作用,强度灵敏度的品质因数估计比传统表面等离子体共振传感器高44倍。我们的研究揭示了基于表面等离激元极化子模式与多阶平面波导模式耦合的高灵敏度传感器的潜在优势。