Department of Photonics and Institute of Electro-Optical Engineering, National Chiao Tung University, Room 415 CPT building, 1001 Ta-Hsueh Road, Hsinchu 300, Taiwan.
Nano Lett. 2012 Mar 14;12(3):1648-54. doi: 10.1021/nl300012m. Epub 2012 Feb 13.
We investigate the optical properties of gold nanoring (NR) dimers in both simulation and experiment. The resonance peak wavelength of gold NR dimers is strongly dependent on the polarization direction and gap distance. As the gold NR particles approach each other, exponential red shift and slight blue shift of coupled bonding (CB) mode in gold NR dimers for longitudinal and transverse polarizations are obtained. In finite element method analysis, a very strong surface plasmon coupling in the gap region of gold NR dimers is observed, whose field intensity at the gap distance of 10 nm is enhanced 23% compared to that for gold nanodisk (ND) dimers with the same diameter. In addition, plasmonic dimer system exhibits a great improvement in the sensing performance. Near-field coupling in gold NR dimers causes exponential increase in sensitivity to refractive index of surrounding medium with decreasing the gap distance. Compared with coupled dipole mode in gold ND dimers, CB mode in gold NR dimers shows higher index sensitivity. This better index sensing performance is resulted form the additional electric field in inside region of NR and the larger field enhancement in the gap region owing to the stronger coupling of collective dipole plasmon resonances for CB mode. These results pave the way to design plasmonic nanostructures for practical applications that require coupled metallic nanoparticles with enhanced electric fields.
我们在模拟和实验中研究了金纳米环(NR)二聚体的光学性质。金 NR 二聚体的共振峰波长强烈依赖于偏振方向和间隙距离。当金 NR 颗粒相互靠近时,对于纵向和横向偏振,金 NR 二聚体中的耦合键(CB)模式会发生指数红移和轻微蓝移。在有限元法分析中,观察到金 NR 二聚体间隙区域中存在很强的表面等离激元耦合,其在间隙距离为 10nm 时的场强比具有相同直径的金纳米盘(ND)二聚体增强了 23%。此外,等离子体二聚体系统在传感性能方面有了很大的提高。近场耦合会导致金 NR 二聚体的灵敏度随间隙距离的减小呈指数增加,对周围介质折射率的变化敏感。与金 ND 二聚体中的耦合偶极子模式相比,金 NR 二聚体中的 CB 模式表现出更高的指数灵敏度。这种更好的指数传感性能归因于 NR 内部区域的附加电场和由于 CB 模式的集体偶极等离子体共振更强耦合而在间隙区域的更大场增强。这些结果为需要增强电场的耦合金属纳米粒子的实际应用设计等离子体纳米结构铺平了道路。