Albella Pablo, Shibanuma Toshihiko, Maier Stefan A
The Blackett Laboratory, Imperial College London, London SW7 2AZ, UK.
Sci Rep. 2015 Dec 10;5:18322. doi: 10.1038/srep18322.
High refractive index dielectric nanoparticles show high promise as a complementary nanophotonics platform due to compared with plasmonic nanostructures low absorption losses and the co-existence of magnetic and electric resonances. Here we explore their use as resonantly enhanced directional scatterers. We theoretically demonstrate that an asymmetric dimer of silicon nanoparticles shows tuneable directional scattering depending on the frequency of excitation. This is due to the interference between electric and magnetic dipoles excited in each nanoparticle, enabling directional control of the scattered light. Interestingly, this control can be achieved regardless of the polarization direction with respect to the dimer axis; however, difference in the polarization can shift the wavelengths at which the directional scattering is achieved. We also explore the application of such an asymmetric nanoantenna as a tuneable routing element in a nanometer scale, suggesting applications in optical nanocircuitry.
由于与等离子体纳米结构相比具有低吸收损耗以及磁谐振和电谐振共存的特性,高折射率介电纳米粒子作为一种互补的纳米光子学平台展现出了巨大的潜力。在此,我们探索将它们用作共振增强型定向散射体。我们从理论上证明,硅纳米粒子的不对称二聚体根据激发频率表现出可调节的定向散射。这是由于每个纳米粒子中激发的电偶极子和磁偶极子之间的干涉,从而实现了对散射光的定向控制。有趣的是,无论相对于二聚体轴的偏振方向如何,都能实现这种控制;然而,偏振的差异会使实现定向散射的波长发生偏移。我们还探索了这种不对称纳米天线作为纳米尺度上的可调路由元件的应用,这表明其在光学纳米电路中有应用前景。