Jung Hyunseung, Hale Lucy L, Gennaro Sylvain D, Briscoe Jayson, Iyer Prasad P, Doiron Chloe F, Harris C Thomas, Luk Ting Shan, Addamane Sadhvikas J, Reno John L, Brener Igal, Mitrofanov Oleg
Sandia National Laboratories, Albuquerque, New Mexico 87123, United States.
Center for Integrated Nanotechnologies, Sandia National Laboratories, Albuquerque, New Mexico 87123, United States.
Nano Lett. 2022 Nov 23;22(22):9077-9083. doi: 10.1021/acs.nanolett.2c03456. Epub 2022 Nov 11.
The effect of terahertz (THz) pulse generation has revolutionized broadband coherent spectroscopy and imaging at THz frequencies. However, THz pulses typically lack spatial structure, whereas structured beams are becoming essential for advanced spectroscopy applications. Nonlinear optical metasurfaces with nanoscale THz emitters can provide a solution by defining the beam structure at the generation stage. We develop a nonlinear InAs metasurface consisting of nanoscale optical resonators for simultaneous generation and structuring of THz beams. We find that THz pulse generation in the resonators is governed by optical rectification. It is more efficient than in ZnTe crystals, and it allows us to control the pulse polarity and amplitude, offering a platform for realizing binary-phase THz metasurfaces. To illustrate this capability, we demonstrate an InAs metalens, which simultaneously generates and focuses THz pulses. The control of spatiotemporal structure using nanoscale emitters opens doors for THz beam engineering and advanced spectroscopy and imaging applications.
太赫兹(THz)脉冲产生的效应彻底改变了太赫兹频段的宽带相干光谱学和成像技术。然而,太赫兹脉冲通常缺乏空间结构,而结构化光束对于先进的光谱学应用正变得至关重要。具有纳米级太赫兹发射器的非线性光学超表面可以通过在产生阶段定义光束结构来提供解决方案。我们开发了一种由纳米级光学谐振器组成的非线性砷化铟超表面,用于同时产生和结构化太赫兹光束。我们发现谐振器中的太赫兹脉冲产生受光学整流支配。它比在碲化锌晶体中更有效,并且使我们能够控制脉冲极性和幅度,为实现二元相位太赫兹超表面提供了一个平台。为了说明这种能力,我们展示了一种砷化铟超透镜,它能同时产生并聚焦太赫兹脉冲。利用纳米级发射器对时空结构进行控制,为太赫兹光束工程以及先进的光谱学和成像应用打开了大门。