Panaretos Anastasios H, Werner Douglas H
Opt Express. 2015 Apr 6;23(7):8298-309. doi: 10.1364/OE.23.008298.
In this paper we theoretically investigate the feasibility of creating a dual-mode plasmonic nanorod antenna. The proposed design methodology relies on adapting to optical wavelengths the principles of operation of trapped dipole antennas, which have been widely used in the low MHz frequency range. This type of antenna typically employs parallel LC circuits, also referred to as "traps", which are connected along the two arms of the dipole. By judiciously choosing the resonant frequency of these traps, as well as their position along the arms of the dipole, it is feasible to excite the λ/2 resonance of both the original dipole as well as the shorter section defined by the length of wire between the two traps. This effectively enables the dipole antenna to have a dual-mode of operation. Our analysis reveals that the implementation of this concept at the nanoscale requires that two cylindrical pockets (i.e. loading volumes) be introduced along the length of the nanoantenna, inside which plasmonic core-shell particles are embedded. By properly selecting the geometry and constitution of the core-shell particle as well as the constitution of the host material of the two loading volumes and their position along the nanorod, the equivalent effect of a resonant parallel LC circuit can be realized. This effectively enables a dual-mode operation of the nanorod antenna. The proposed methodology introduces a compact approach for the realization of dual-mode optical sensors while at the same time it clearly illustrates the inherent tuning capabilities that core-shell particles can offer in a practical framework.
在本文中,我们从理论上研究了创建双模等离子体纳米棒天线的可行性。所提出的设计方法依赖于将捕获偶极子天线的工作原理应用于光波长,这种天线已在低兆赫兹频率范围内广泛使用。这种类型的天线通常采用并联LC电路,也称为“陷波电路”,它们沿着偶极子的两个臂连接。通过明智地选择这些陷波电路的谐振频率及其在偶极子臂上的位置,可以激发原始偶极子以及由两个陷波电路之间的导线长度定义的较短部分的λ/2谐振。这有效地使偶极子天线具有双模工作模式。我们的分析表明,在纳米尺度上实现这一概念需要沿着纳米天线的长度引入两个圆柱形腔(即加载体积),并在其中嵌入等离子体核壳粒子。通过适当选择核壳粒子的几何形状和组成以及两个加载体积的主体材料的组成及其在纳米棒上的位置,可以实现谐振并联LC电路的等效效果。这有效地使纳米棒天线能够进行双模工作。所提出的方法为实现双模光学传感器引入了一种紧凑的方法,同时清楚地展示了核壳粒子在实际框架中可以提供的固有调谐能力。