Zhu Shan, Quan Jiaqi, Fu Yangyang, Chen Huanyang, Gao Lei, Xu Yadong
Opt Express. 2022 Aug 1;30(16):29246-29257. doi: 10.1364/OE.453700.
Freely controlling wavefronts with metasurfaces has been widely studied in linear optical systems. By constructing phase gradient meta-atoms with nonlinear responses, the wavefronts of high-harmonic fields in nonlinear metasurfaces can be arbitrarily steered by following nonlinear generalized Snell's law (NGSL). However, for incident angles above the critical angle, NGSL fails to predict the generated nonlinear waves. In this work, by involving the reciprocal lattice effect of the nonlinear metasurface, we show a modified diffraction law to completely describe the nonlinear diffraction phenomena. This law is numerically demonstrated and confirmed by designed graphene-based nonlinear metasurfaces in the terahertz regime. Moreover, based on the diffraction law, we designed a nonlinear retroreflector and realized tunable control over a nonlinear wavefront in a single nonlinear metasurface. Our work provides a way to manipulate nonlinear waves and provides a better design of functional nonlinear metadevices.
在线性光学系统中,利用超表面自由控制波前已得到广泛研究。通过构建具有非线性响应的相位梯度超原子,非线性超表面中高谐波场的波前可依据非线性广义斯涅尔定律(NGSL)进行任意操控。然而,对于大于临界角的入射角,NGSL无法预测所产生的非线性波。在这项工作中,通过考虑非线性超表面的倒易晶格效应,我们展示了一种修正的衍射定律,以完整描述非线性衍射现象。该定律通过在太赫兹波段设计的基于石墨烯的非线性超表面进行了数值验证和确认。此外,基于该衍射定律,我们设计了一种非线性后向反射器,并在单个非线性超表面中实现了对非线性波前的可调控制。我们的工作提供了一种操控非线性波的方法,并为功能性非线性超器件提供了更好的设计。