Yang Jingyi, Gurung Sudip, Bej Subhajit, Ni Peinan, Howard Lee Ho Wai
Department of Physics & Astronomy, University of California, Irvine, CA 92697, United States of America.
Department of Physics, Baylor University, Waco, TX 76798, United States of America.
Rep Prog Phys. 2022 Mar 3;85(3). doi: 10.1088/1361-6633/ac2aaf.
Optical metasurfaces with subwavelength thickness hold considerable promise for future advances in fundamental optics and novel optical applications due to their unprecedented ability to control the phase, amplitude, and polarization of transmitted, reflected, and diffracted light. Introducing active functionalities to optical metasurfaces is an essential step to the development of next-generation flat optical components and devices. During the last few years, many attempts have been made to develop tunable optical metasurfaces with dynamic control of optical properties (e.g., amplitude, phase, polarization, spatial/spectral/temporal responses) and early-stage device functions (e.g., beam steering, tunable focusing, tunable color filters/absorber, dynamic hologram, etc) based on a variety of novel active materials and tunable mechanisms. These recently-developed active metasurfaces show significant promise for practical applications, but significant challenges still remain. In this review, a comprehensive overview of recently-reported tunable metasurfaces is provided which focuses on the ten major tunable metasurface mechanisms. For each type of mechanism, the performance metrics on the reported tunable metasurface are outlined, and the capabilities/limitations of each mechanism and its potential for various photonic applications are compared and summarized. This review concludes with discussion of several prospective applications, emerging technologies, and research directions based on the use of tunable optical metasurfaces. We anticipate significant new advances when the tunable mechanisms are further developed in the coming years.
具有亚波长厚度的光学超表面因其在控制透射、反射和衍射光的相位、幅度和偏振方面前所未有的能力,在基础光学和新型光学应用的未来发展中具有巨大潜力。将有源功能引入光学超表面是开发下一代平面光学元件和器件的关键一步。在过去几年中,人们进行了许多尝试,基于各种新型有源材料和可调机制,开发具有光学特性(如幅度、相位、偏振、空间/光谱/时间响应)动态控制和早期器件功能(如光束转向、可调聚焦、可调滤色器/吸收器、动态全息图等)的可调光学超表面。这些最近开发的有源超表面在实际应用中显示出巨大潜力,但仍存在重大挑战。在这篇综述中,我们对最近报道的可调超表面进行了全面概述,重点介绍了十种主要的可调超表面机制。对于每种机制类型,概述了报道的可调超表面的性能指标,并比较和总结了每种机制的能力/局限性及其在各种光子应用中的潜力。本文最后讨论了基于可调光学超表面的几种潜在应用、新兴技术和研究方向。我们预计,在未来几年进一步开发可调机制时,将会取得重大的新进展。