[1] Neutens P, Dorpe P V, Vlaminck I D, et al. Elec-trical detection of confined gap plasmons in metal-insulator-metal waveg-uides[J]. Nat Photon, 2009, 3:283-286.
[2] Liu H, Gao Y, Zhu B, et al. A T-shaped high resolution plasmonic demultiplexer based on perturbations of two nanoresonators[J]. Opt Commun, 2015, 334:164-169.
[3] Zhu Zhendong, Bai Benfeng, Tan Qiaofeng. Resonance characteristics of surface plasmon elements on laminated cylindrical table[J]. Infrared and Laser Engineering, 2017, 46(9):0934001. (in Chinese)
[4] Zhu Mengjun, Zhang Dawei, Chen Jiannong. Design of broadband near-infrared surface plasmon logic and gate devices[J]. Infrared and Laser Engineering, 2016, 45(3):0320003.(in Chinese)
[5] Dionne J A, Sweatlock L A, Atwater H A. Plasmon slot waveguides:Towards chip-scale propagation with subwavelength-scale localization[J]. Phys Rev B, 2006, 73:035407.
[6] Johnson P B, Christy R W. Optical constants of the noble metals[J]. Phys Rev B, 1972, 6:4370-4379.
[7] Li Q, Wang T, Su Y, et al. Coupled mode theory analysis of mode-splitting in coupled cavity system[J]. Opt Exp, 2010, 18:8367-8382.
[8] Wang G, Lu H, Liu X, et al. Tunable multi-channel wavelength demultiplexer based on MIM plasmonic nanodisk resonators at telecommunication regime[J]. Opt Exp, 2011, 19:3513-3518.
[9] Chremmos I. Magnetic field integral equation analysis of interactionbetween a surface plasmon polariton and a circular dielectric cavity embedded in the metal[J]. J Opt Soc Amer A, 2009, 26:2623-2633.
[10] Hu F, Yi H, Zhou Z. Wavelength demultiplexing structure based on arrayed plasmonic slot cavities[J]. Opt Lett, 2011, 36:1500-1502.
[11] Huang Lingling. Phase control characteristics and applications of the metamaterials based on chiral light field[J]. Infrared and Laser Engineering, 2016, 45(6):0634001. (in Chinese)