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基于可切换多功能剪纸超表面的电磁波前工程

Electromagnetic Wavefront Engineering by Switchable and Multifunctional Kirigami Metasurfaces.

作者信息

Wang Yingying, Shi Yang, Li Liangwei, Zhu Zhiyan, Liu Muhan, Jin Xiangyu, Li Haodong, Jiang Guobang, Cui Jizhai, Ma Shaojie, He Qiong, Zhou Lei, Sun Shulin

机构信息

Shanghai Engineering Research Centre of Ultra Precision Optical Manufacturing, Department of Optical Science and Engineering, School of Information Science and Technology, Fudan University, Shanghai 200433, China.

Yiwu Research Institute, Fudan University, Chengbei Road, Yiwu 322000, China.

出版信息

Nanomaterials (Basel). 2025 Jan 2;15(1):61. doi: 10.3390/nano15010061.

Abstract

Developing switchable and multifunctional metasurfaces is essential for high-integration photonics. However, most previous studies encountered challenges such as limited degrees of freedom, simple tuning of predefined functionality, and complicated control systems. Here, we develop a general strategy to construct switchable and multifunctional metasurfaces. Two spin-modulated wave-controls are enabled by the proposed high-efficiency metasurface, which is designed using both resonant and geometric phases. Furthermore, the switchable wavefront tailoring can also be achieved by flexibly altering the lattice constant and reforming the phase retardation of the metasurfaces based on the "rotating square" (RS) kirigami technique. As a proof of concept, a kirigami metasurface is designed that successfully demonstrates dynamic controls of three-channel beam steering. In addition, another kirigami metasurface is built for realizing tri-channel complex wavefront engineering, including straight beam focusing, tilted beam focusing, and anomalous reflection. By altering the polarization of input waves as well as transformation states, the functionality of the metadevice can be switched flexibly among three different channels. Microwave experiments show good agreement with full-wave simulations, clearly demonstrating the performance of the metadevices. This strategy exhibits advantages such as flexible control, low cost, and multiple and switchable functionalities, providing a new pathway for achieving switchable wavefront engineering.

摘要

开发可切换的多功能超表面对于高集成光子学至关重要。然而,大多数先前的研究都面临着诸如自由度有限、预定义功能的简单调谐以及复杂的控制系统等挑战。在此,我们开发了一种构建可切换多功能超表面的通用策略。所提出的高效超表面实现了两种自旋调制波控制,该超表面是利用共振相位和几何相位设计的。此外,基于“旋转方块”(RS)折纸技术,通过灵活改变晶格常数和重新调整超表面的相位延迟,还可以实现可切换的波前定制。作为概念验证,设计了一种折纸超表面,成功展示了三通道光束转向的动态控制。此外,还构建了另一种折纸超表面以实现三通道复波前工程,包括直光束聚焦、倾斜光束聚焦和反常反射。通过改变输入波的极化以及变换状态,超器件的功能可以在三个不同通道之间灵活切换。微波实验与全波模拟结果吻合良好,清楚地展示了超器件的性能。该策略具有灵活控制、低成本以及多种可切换功能等优点,为实现可切换波前工程提供了一条新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5e3f/11722745/43dafb01eabd/nanomaterials-15-00061-g001.jpg

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