Pelgrin Vincent, Wang Yuchen, Peltier Jonathan, Alonso-Ramos Carlos, Vivien Laurent, Sun Zhipei, Cassan Eric
Opt Lett. 2022 Feb 15;47(4):734-737. doi: 10.1364/OL.440462.
In the past few years, we have witnessed increased interest in the use of 2D materials to produce hybrid photonic nonlinear waveguides. Although graphene has attracted most of the attention, other families of 2D materials such as transition metal dichalcogenides have also shown promising nonlinear performance. In this work, we propose a strategy for designing silicon nitride waveguiding structures with embedded MoS for nonlinear applications. The transverse geometry of the hybrid waveguide is optimized for high third-order nonlinear effects using optogeometrical engineering and multiple layers of MoS. Stacking multiple monolayers results in an improvement of two orders of magnitude compared to standard silicon nitride waveguides. The hybrid waveguide performance is then investigated in terms of four-wave mixing enhancement in micro-ring resonator configurations. A signal/idler conversion efficiency of -6.3 dB is reached for a wavelength of around 1.55 µm with a 5 mW pumping level.
在过去几年中,我们目睹了人们对使用二维材料制造混合光子非线性波导的兴趣日益浓厚。尽管石墨烯吸引了大部分关注,但其他二维材料家族,如过渡金属二卤化物,也展现出了颇具前景的非线性性能。在这项工作中,我们提出了一种用于设计嵌入二硫化钼(MoS)的氮化硅波导结构以用于非线性应用的策略。利用光学几何工程和多层二硫化钼,对混合波导的横向几何结构进行了优化,以实现高阶非线性效应。与标准氮化硅波导相比,堆叠多个单层可使性能提高两个数量级。然后,在微环谐振器配置中,从四波混频增强的角度研究了混合波导的性能。在5毫瓦的泵浦功率水平下,对于波长约为1.55微米的光,实现了-6.3分贝的信号/闲频转换效率。