Lee Ki Young, Yoon Jae Woong, Song Seok Ho, Magnusson Robert
Department of Physics, Hanyang University, Seoul 133-791, Korea.
Department of Electrical Engineering, University of Texas - Arlington, Arlington, TX 76019, United States.
Sci Rep. 2017 Apr 18;7:46508. doi: 10.1038/srep46508.
We propose a free-space electro-optic transmission modulator based on multiple p-n-junction semiconductor subwavelength gratings. The proposed device operates with a high-Q guided-mode resonance undergoing electro-optic resonance shift due to direct electrical control. Using rigorous electrical and optical modeling methods, we theoretically demonstrate a modulation depth of 84%, on-state efficiency 85%, and on-off extinction ratio of 19 dB at 1,550 nm wavelength under electrical control signals within a favorably low bias voltage range from -4 V to +1 V. This functionality operates in the transmission mode and sustainable in the high-speed operation regime up to a 10-GHz-scale modulation bandwidth in principle. The theoretical performance prediction is remarkably advantageous over plasmonic tunable metasurfaces in the power-efficiency and absolute modulation-depth aspects. Therefore, further experimental study is of great interest for creating practical-level metasurface components in various application areas.
我们提出了一种基于多个p-n结半导体亚波长光栅的自由空间电光传输调制器。所提出的器件通过高Q值的导模共振运行,由于直接的电控制,该共振会发生电光共振偏移。使用严格的电学和光学建模方法,我们从理论上证明,在-4 V至+1 V的低偏置电压范围内的电控制信号下,在1550 nm波长处,调制深度为84%,导通状态效率为85%,开-关消光比为19 dB。此功能在传输模式下运行,原则上在高达10 GHz规模的调制带宽的高速运行状态下可持续。在功率效率和绝对调制深度方面,理论性能预测比等离子体可调超表面具有显著优势。因此,进一步的实验研究对于在各种应用领域中创建实际水平的超表面组件具有重要意义。