Zhou Yiwen, Zhang Teng, Wang Guannan, Guo Ziqing, Zang Xiaofei, Zhu Yiming, Ding Fei, Zhuang Songlin
Terahertz Technology Innovation Research Institute, and Shanghai Key Lab of Modern Optical System, University of Shanghai for Science and Technology, No. 516 JunGong Road, Shanghai, 200093, China.
Centre for Nano Optics, University of Southern Denmark, Campusvej 55, Odense, M DK-5230, Denmark.
Adv Sci (Weinh). 2024 Oct;11(38):e2406571. doi: 10.1002/advs.202406571. Epub 2024 Aug 9.
Janus metasurfaces, exemplifying two-faced 2D metamaterials, have shown unprecedented capabilities in asymmetrically manipulating the wavefront of electromagnetic waves in both forward and backward propagating directions, enabling novel applications in asymmetric information processing, security, and signal multiplexing. However, current Janus metasurfaces only allow for directional phase manipulation, hindering their broader application potential. Here, the study proposes a versatile Janus metasurface platform that can directionally control the phase and polarization of terahertz waves by integrating functionalities of half-wave plates, quarter-wave plates, and metallic gratings within a cascaded metasurface structure. As a proof-of-principle, the study experimentally demonstrates Janus metasurfaces capable of independent and simultaneous control over phase and polarization, showcasing propagation direction-encoded focusing and polarization conversion. Moreover, the directionally focused points are utilized with distinct polarization states for advanced applications in direction- and polarization-sensitive detection and imaging. This unique strategy for simultaneous phase and polarization control with direction-dependent versatility opens new avenues for designing ultra-compact devices with significant implications in imaging, encryption, and data storage.
双面超表面作为双面二维超材料的典型代表,在向前和向后传播方向上对电磁波波前进行非对称操纵方面展现出了前所未有的能力,从而在非对称信息处理、安全和信号复用等领域实现了新颖的应用。然而,目前的双面超表面仅能进行定向相位操纵,这限制了它们更广泛的应用潜力。在此,该研究提出了一种通用的双面超表面平台,通过在级联超表面结构中集成半波片、四分之一波片和金属光栅的功能,能够定向控制太赫兹波的相位和偏振。作为原理验证,该研究通过实验证明了双面超表面能够独立且同时控制相位和偏振,展示了传播方向编码聚焦和偏振转换。此外,定向聚焦点被用于具有不同偏振态的方向和偏振敏感检测与成像等先进应用中。这种具有方向依赖通用性的同时控制相位和偏振的独特策略,为设计在成像、加密和数据存储方面具有重要意义的超紧凑设备开辟了新途径。