Faculty of Physics, St. Petersburg State University, Universitetskaya Emb. 13B, St. Petersburg, 199034, Russia.
Center for Photonics and 2D Materials, Moscow Institute of Physics and Technology, 9 Institutskiy Lane, Dolgoprudny, 141701, Russia.
Small. 2023 Jul;19(28):e2301660. doi: 10.1002/smll.202301660. Epub 2023 May 13.
Emerging technologies for integrated optical circuits demand novel approaches and materials. This includes a search for nanoscale waveguides that should satisfy criteria of high optical density, small cross-section, technological feasibility and structural perfection. All these criteria are met with self-assembled gallium phosphide (GaP) epitaxial nanowires. In this work, the effects of the nanowire geometry on their waveguiding properties are studied both experimentally and numerically. Cut-off wavelength dependence on the nanowire diameter is analyzed to demonstrate the pathways for fabrication of low-loss and subwavelength cross-section waveguides for visible and near-infrared (IR) ranges. Probing the waveguides with a supercontinuum laser unveils the filtering properties of the nanowires due to their resonant action. The nanowires exhibit perfect elasticity allowing fabrication of curved waveguides. It is demonstrated that for the nanowire diameters exceeding the cut-off value, the bending does not sufficiently reduce the field confinement promoting applicability of the approach for the development of nanoscale waveguides with a preassigned geometry. Optical X-coupler made of two GaP nanowires allowing for spectral separation of the signal is fabricated. The results of this work open new ways for the utilization of GaP nanowires as elements of advanced photonic logic circuits and nanoscale interferometers.
新兴的集成光学技术需要新的方法和材料。这包括寻找纳米尺度的波导,其应满足高光学密度、小截面、技术可行性和结构完整性的标准。所有这些标准都可以通过自组装磷化镓(GaP)外延纳米线来满足。在这项工作中,通过实验和数值研究了纳米线几何形状对其波导性能的影响。分析了截止波长对纳米线直径的依赖性,以展示用于可见光和近红外(IR)范围的低损耗和亚波长截面波导的制造途径。用超连续激光探测波导,揭示了由于共振作用,纳米线的滤波特性。纳米线表现出完美的弹性,允许制造弯曲的波导。结果表明,对于直径超过截止值的纳米线,弯曲不会显著减少场限制,从而促进了该方法在具有预定几何形状的纳米尺度波导开发中的应用。制作了由两根 GaP 纳米线组成的光学 X 耦合器,允许对信号进行光谱分离。这项工作的结果为 GaP 纳米线作为先进光子逻辑电路和纳米尺度干涉仪的元件开辟了新的途径。