Abed Omid, Yousefi Leila
Opt Express. 2020 Nov 9;28(23):33876-33889. doi: 10.1364/OE.404103.
Tunable metasurfaces enable us to dynamically control light at subwavelength scales. Here, using phase change materials and transparent graphene heaters, a new structure is proposed to develop tunable metasurfaces which support first-order Mie-type resonance in the near-IR regime. In the proposed structure, by adjusting the bias voltages applied to transparent graphene heaters, the crystallization levels of the phase change materials are controlled, which in turn modifies the response of the metasurface. The proposed metasurface is able to modulate the phase of the reflected wave in the range of 0° to -270° at the telecommunication wavelength of λ = 1.55 µm. A comprehensive Joule heating analysis is performed to investigate the thermal characterizations of the proposed structure. The results of this analysis show that there is a suitable thermal isolation between adjacent unit cells, making individual control on unit cells possible. The potential ability of the proposed metasurface as a beam steering device is also demonstrated. By using the proposed unit cells, a beam-steering device is designed and numerically studied. This study shows that the device can reflect a light normally incident on it in the range of ±65° with reasonably low sidelobe levels. The proposed structure can be used in developing low-cost integrated LiDARs.
可调谐超表面使我们能够在亚波长尺度上动态控制光。在此,利用相变材料和透明石墨烯加热器,提出了一种新结构来开发在近红外波段支持一阶米氏型共振的可调谐超表面。在所提出的结构中,通过调整施加到透明石墨烯加热器上的偏置电压,控制相变材料的结晶水平,进而改变超表面的响应。所提出的超表面能够在电信波长λ = 1.55 µm 处将反射波的相位在 0°至 -270°范围内进行调制。进行了全面的焦耳热分析以研究所提出结构的热特性。该分析结果表明相邻单元之间存在合适的热隔离,使得对单元进行单独控制成为可能。还展示了所提出的超表面作为光束转向装置的潜在能力。通过使用所提出的单元,设计并对光束转向装置进行了数值研究。该研究表明该装置能够以合理低的旁瓣水平在±65°范围内反射垂直入射到其上的光。所提出的结构可用于开发低成本集成激光雷达。