Bian Yusheng, Gong Qihuang
State Key Laboratory for Mesoscopic Physics, Department of Physics, Peking University, Beijing 100871, China.
1] State Key Laboratory for Mesoscopic Physics, Department of Physics, Peking University, Beijing 100871, China [2] Collaborative Innovation Center of Quantum Matter, Beijing 100871, China.
Sci Rep. 2014 Oct 20;4:6617. doi: 10.1038/srep06617.
We report the realization of low-loss optical waveguiding at telecommunication wavelength by exploiting the hybridization of photonic modes guided by coupled all-dielectric nanowires and plasmon waves at planar metal-dielectric interfaces. The characteristics of the hybrid plasmon polaritons, which are yielded by the coupling between two types of guided modes, can be readily tuned through engineering key structural parameters of the coupled nanowires and their distances to the metallic surfaces. In addition to exhibiting significantly lower attenuations for similar degrees of confinement as compared to the conventional hybrid waves in single-dielectric-nanowire-based waveguides, these hybridized plasmonic modes are also capable of enabling reduced waveguide crosstalk for comparable propagation distances. Being compatible with semiconductor fabrication techniques, the proposed guiding schemes could be promising candidates for various integrated photonic devices and may lead to potential applications in a wide variety of related areas.
我们报告了通过利用由耦合全介质纳米线引导的光子模式与平面金属 - 介质界面处的等离子体波的杂化,实现了电信波长下的低损耗光波导。由两种类型的引导模式之间的耦合产生的混合等离子体激元的特性,可以通过设计耦合纳米线的关键结构参数及其与金属表面的距离来轻松调整。与基于单介质纳米线的波导中的传统混合波相比,这些混合等离子体模式在类似的限制程度下表现出显著更低的衰减,并且在相当的传播距离内还能够减少波导串扰。由于与半导体制造技术兼容,所提出的波导方案可能是各种集成光子器件的有前途的候选方案,并可能在广泛的相关领域中带来潜在应用。