Hattori Haroldo T, Li Ziyuan, Liu Danyu, Rukhlenko Ivan D, Premaratne Malin
School of Engineering and Information Technology, University of New South Wales, Australian Defence Force, Academy, Canberra, ACT 2600, Australia.
Opt Express. 2009 Nov 9;17(23):20878-84. doi: 10.1364/OE.17.020878.
An optical dipole nano-antenna can be constructed by placing a sub-wavelength dielectric (e.g., air) gap between two metallic regions. For typical applications using light in the infrared region, the gap width is generally in the range between 50 and 100 nm. Owing to the close proximity of the electrodes, these antennas can generate very intense electric fields that can be used to excite nonlinear effects. For example, it is possible to trigger surface Raman scattering on molecules placed in the vicinity of the nano-antenna, allowing the fabrication of biological sensors and imaging systems in the nanometric scale. However, since nano-antennas are passive devices, they need to receive light from external sources that are generally much larger than the antennas. In this article, we numerically study the coupling of light from microdisk lasers into plasmonic nano-antennas. We show that, by using micro-cavities, we can further enhance the electric fields inside the nano-antennas.
通过在两个金属区域之间设置亚波长电介质(如空气)间隙,可以构建一个光学偶极子纳米天线。对于使用红外区域光的典型应用,间隙宽度通常在50至100纳米范围内。由于电极距离很近,这些天线可以产生非常强的电场,可用于激发非线性效应。例如,有可能在置于纳米天线附近的分子上触发表面拉曼散射,从而实现纳米尺度生物传感器和成像系统的制造。然而,由于纳米天线是无源器件,它们需要从通常比天线大得多的外部光源接收光。在本文中,我们对从微盘激光器发出的光与等离子体纳米天线之间的耦合进行了数值研究。我们表明,通过使用微腔,可以进一步增强纳米天线内部的电场。