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在超薄双曲线超材料中利用彩虹捕获实现全彩增强二次谐波产生。

Full-color enhanced second harmonic generation using rainbow trapping in ultrathin hyperbolic metamaterials.

作者信息

Li Junhao, Hu Guangwei, Shi Lina, He Nan, Li Daqian, Shang Qiuyu, Zhang Qing, Fu Huange, Zhou Linlin, Xiong Wei, Guan Jianguo, Wang Jian, He Sailing, Chen Lin

机构信息

Wuhan National Laboratory for Optoelectronics and School of Optical and Electronic Information, Huazhong University of Science and Technology, Wuhan, 430074, China.

Department of Electrical and Computer Engineering, National University of Singapore, 4 Engineering Drive 3, Singapore, 117583, Singapore.

出版信息

Nat Commun. 2021 Nov 5;12(1):6425. doi: 10.1038/s41467-021-26818-3.

Abstract

Metasurfaces have provided a promising approach to enhance the nonlinearity at subwavelength scale, but usually suffer from a narrow bandwidth as imposed by sharp resonant features. Here, we counterintuitively report a broadband, enhanced second-harmonic generation, in nanopatterned hyperbolic metamaterials. The nanopatterning allows the direct access of the mode with large momentum, rendering the rainbow light trapping, i.e. slow light in a broad frequency, and thus enhancing the local field intensity for boosted nonlinear light-matter interactions. For a proof-of-concept demonstration, we fabricated a nanostructured Au/ZnO multilayer, and enhanced second harmonic generation can be observed within the visible wavelength range (400-650 nm). The enhancement factor is over 50 within the wavelength range of 470-650 nm, and a maximum conversion efficiency of 1.13×10 is obtained with a pump power of only 8.80 mW. Our results herein offer an effective and robust approach towards the broadband metasurface-based nonlinear devices for various important technologies.

摘要

超表面为在亚波长尺度增强非线性提供了一种很有前景的方法,但通常会因尖锐的共振特性而带宽较窄。在此,我们反直觉地报道了在纳米图案化的双曲线超材料中实现宽带增强二次谐波产生。纳米图案化使得能够直接获取具有大动量的模式,实现彩虹光捕获,即在很宽频率范围内的慢光,从而增强局部场强以促进非线性光与物质的相互作用。为了进行概念验证演示,我们制备了纳米结构的金/氧化锌多层膜,并且在可见波长范围(400 - 650纳米)内可以观察到增强的二次谐波产生。在470 - 650纳米波长范围内增强因子超过50,并且在仅8.80毫瓦的泵浦功率下获得了1.13×10的最大转换效率。我们在此的结果为用于各种重要技术的基于宽带超表面的非线性器件提供了一种有效且稳健的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6340/8571340/74482535a93d/41467_2021_26818_Fig1_HTML.jpg

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