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具有超表面修饰石英晶体的非线性波前工程

Nonlinear wavefront engineering with metasurface decorated quartz crystal.

作者信息

Mao Ningbin, Tang Yutao, Jin Mingke, Zhang Guanqing, Li Yang, Zhang Xuecai, Hu Zixian, Tang Wenhao, Chen Yu, Liu Xuan, Li Kingfai, Cheah Kokwai, Li Guixin

机构信息

Department of Materials Science and Engineering, Southern University of Science and Technology, Shenzhen, 518055, China.

Department of Physics and Institute of Advanced Materials, Hong Kong Baptist University, Hong Kong, China.

出版信息

Nanophotonics. 2021 Nov 2;11(4):797-803. doi: 10.1515/nanoph-2021-0464. eCollection 2022 Jan.

Abstract

In linear optical processes, compact and effective wavefront shaping techniques have been developed with the artificially engineered materials and devices in the past decades. Recently, wavefront shaping of light at newly generated frequencies was also demonstrated using nonlinear photonic crystals and metasurfaces. However, the nonlinear wave-shaping devices with both high nonlinear optical efficiency and high wave shaping efficiency are difficult to realize. To circumvent this constraint, we propose the idea of metasurface decorated optical crystal to take the best aspects of both traditional nonlinear crystals and photonic metasurfaces. In the proof-of-concept experiment, we show that a silicon nitride metasurface decorated quartz crystal can be used for the wavefront shaping of the second harmonic waves generated in quartz. With this crystal-metasurface hybrid platform, the nonlinear vortex beam generation and nonlinear holography were successfully demonstrated. The proposed methodology may have important applications in nonlinear structured light generation, super-resolution imaging, and optical information processing, etc.

摘要

在过去几十年中,利用人工工程材料和器件,已开发出紧凑且有效的线性光学过程波前整形技术。最近,还利用非线性光子晶体和超表面展示了新产生频率光的波前整形。然而,难以实现同时具有高非线性光学效率和高波前整形效率的非线性波整形器件。为规避这一限制,我们提出了超表面修饰光学晶体的想法,以兼具传统非线性晶体和光子超表面的优点。在概念验证实验中,我们表明,氮化硅超表面修饰的石英晶体可用于石英中产生的二次谐波的波前整形。利用这个晶体 - 超表面混合平台,成功演示了非线性涡旋光束的产生和非线性全息术。所提出的方法可能在非线性结构光产生、超分辨率成像和光学信息处理等方面有重要应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/af68/11501526/192322ee1b2d/j_nanoph-2021-0464_fig_001.jpg

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