Department of Engineering Science and Mechanics, The Pennsylvania State University, University Park, PA 16802, USA.
Department of Fluid Machinery and Engineering, School of Energy and Power Engineering, Xi'an Jiaotong University, Xi'an 710049, P. R. China.
Sci Rep. 2017 Jan 16;7:40479. doi: 10.1038/srep40479.
The emerging development of the hybrid plasmonic waveguide has recently received significant attention owing to its remarkable capability of enabling subwavelength field confinement and great transmission distance. Here we report a guiding approach that integrates hybrid plasmon polariton with dielectric-loaded plasmonic waveguiding. By introducing a deep-subwavelength dielectric ridge between a dielectric slab and a metallic substrate, a hybrid dielectric-loaded nanoridge plasmonic waveguide is formed. The waveguide features lower propagation loss than its conventional hybrid waveguiding counterpart, while maintaining strong optical confinement at telecommunication wavelengths. Through systematic structural parameter tuning, we realize an efficient balance between confinement and attenuation of the fundamental hybrid mode, and we demonstrate the tolerance of its properties despite fabrication imperfections. Furthermore, we show that the waveguide concept can be extended to other metal/dielectric composites as well, including metal-insulator-metal and insulator-metal-insulator configurations. Our hybrid dielectric-loaded nanoridge plasmonic platform may serve as a fundamental building block for various functional photonic components and be used in applications such as sensing, nanofocusing, and nanolasing.
由于混合等离子体导波在实现亚波长场限制和长距离传输方面的卓越能力,其新兴发展最近受到了极大关注。在此,我们报告了一种将混合等离子体极化激元与介质加载等离子体导波相结合的导波方法。通过在介质平板和金属衬底之间引入深亚波长介质脊,形成了混合介质加载纳米脊等离子体波导。与传统的混合导波相比,该波导具有更低的传播损耗,同时在电信波长处保持较强的光限制。通过系统的结构参数调整,我们实现了基本混合模式的限制和衰减之间的有效平衡,并证明了其特性对制造不完美的容忍性。此外,我们还表明,该波导概念也可以扩展到其他金属/介质复合材料,包括金属-绝缘体-金属和绝缘体-金属-绝缘体配置。我们的混合介质加载纳米脊等离子体平台可以作为各种功能光子组件的基本构建块,用于传感、纳米聚焦和纳米激光等应用。