Badri S Hadi, Farkoush Saeid Gholami
Appl Opt. 2021 Apr 1;60(10):2803-2810. doi: 10.1364/AO.419587.
Subwavelength engineering and utilizing phase-change materials with large contrast in their optical properties have become powerful design tools for integrated silicon photonics. Reversible phase-transition of phase-change materials such as (GST) provide a new degree of freedom and open up the possibility of adding new functionalities to the designed devices. We present an optical filter based on a silicon subwavelength grating (SWG) waveguide evanescently coupled to phase-change material loading segments arranged periodically around the SWG core. The effect of the GST loading segments' geometry and their distance from the SWG core on the filter's central wavelength and bandwidth are studied with three-dimensional finite-difference time-domain simulations. The employment of GST in the structure adds a switching functionality with an extinction ratio of 28.8 dB. We also examine the possibility of using the proposed structure as a reconfigurable filter by controlling the partial crystallization of the GST offering a blueshift of more than 4 nm.
亚波长工程以及利用光学性质具有巨大反差的相变材料已成为集成硅光子学的强大设计工具。诸如锗锑碲(GST)等相变材料的可逆相变提供了一个新的自由度,并为在设计器件中添加新功能开辟了可能性。我们展示了一种基于硅亚波长光栅(SWG)波导的光学滤波器,该波导与围绕SWG纤芯周期性排列的相变材料加载段进行倏逝耦合。通过三维时域有限差分模拟研究了GST加载段的几何形状及其与SWG纤芯的距离对滤波器中心波长和带宽的影响。在该结构中使用GST增加了一个消光比为28.8 dB的开关功能。我们还研究了通过控制GST的部分结晶使中心波长蓝移超过4 nm,从而将所提出的结构用作可重构滤波器的可能性。