George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA.
School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA.
Nanoscale. 2018 Mar 28;10(12):5708-5716. doi: 10.1039/c8nr00701b. Epub 2018 Mar 14.
Chains of nanoscale plasmonic resonators are capable of sub-diffractional waveguiding and have applications in nanophotonics and thermal radiation transport. Practical uses have largely been limited, however, due to high optical losses or low group velocities. Here, we predict the waveguide performance of a material structure capable of overcoming these limitations: plasmonic resonators embedded in high-dielectric nanowires. Due to the enhanced near-field coupling between resonators, we find that the group velocities and propagation lengths for doped Si plasmonic resonators in intrinsic Si nanowires can be increased by up to an order of magnitude compared to the case of isotropic vacuum surroundings. We investigate the impact of resonator aspect ratio, doping, and spacing on waveguide performance, and we find that propagation lengths are maximized for large aspect ratios and high dopant concentrations at small spacings. To study these complex anisotropic systems, we develop a new analytical "absorption spectra" method to extract waveguide information from simple far-field absorption experiments (or simulations) of only two coupled resonators.
纳米级等离子体激元谐振器链能够实现亚衍射波导,在纳米光子学和热辐射输运中有应用。然而,由于高光学损耗或低群速度,实际应用受到了很大限制。在这里,我们预测了一种能够克服这些限制的材料结构的波导性能:嵌入在高介电纳米线中的等离子体激元谐振器。由于谐振器之间的近场耦合增强,我们发现掺杂硅等离子体激元在本征硅纳米线中的群速度和传播长度可以比各向同性真空环境中的情况增加一个数量级。我们研究了谐振器的纵横比、掺杂和间距对波导性能的影响,发现大纵横比和小间距下高掺杂浓度时传播长度最大。为了研究这些复杂的各向异性系统,我们开发了一种新的分析“吸收光谱”方法,从仅两个耦合谐振器的简单远场吸收实验(或模拟)中提取波导信息。