Guo Yinghui, Zhang Shicong, Pu Mingbo, He Qiong, Jin Jinjin, Xu Mingfeng, Zhang Yaxin, Gao Ping, Luo Xiangang
State Key Laboratory of Optical Technologies on Nano-Fabrication and Micro-Engineering, Institute of Optics and Electronics, Chinese Academy of Sciences, Chengdu, 610209, China.
School of Optoelectronics, University of Chinese Academy of Sciences, Beijing, 100049, China.
Light Sci Appl. 2021 Mar 25;10(1):63. doi: 10.1038/s41377-021-00497-7.
With inherent orthogonality, both the spin angular momentum (SAM) and orbital angular momentum (OAM) of photons have been utilized to expand the dimensions of quantum information, optical communications, and information processing, wherein simultaneous detection of SAMs and OAMs with a single element and a single-shot measurement is highly anticipated. Here, a single azimuthal-quadratic phase metasurface-based photonic momentum transformation (PMT) is illustrated and utilized for vortex recognition. Since different vortices are converted into focusing patterns with distinct azimuthal coordinates on a transverse plane through PMT, OAMs within a large mode space can be determined through a single-shot measurement. Moreover, spin-controlled dual-functional PMTs are proposed for simultaneous SAM and OAM sorting, which is implemented by a single spin-decoupled metasurface that merges both the geometric phase and dynamic phase. Interestingly, our proposed method can detect vectorial vortices with both phase and polarization singularities, as well as superimposed vortices with a certain interval step. Experimental results obtained at several wavelengths in the visible band exhibit good agreement with the numerical modeling. With the merits of ultracompact device size, simple optical configuration, and prominent vortex recognition ability, our approach may underpin the development of integrated and high-dimensional optical and quantum systems.
由于具有固有的正交性,光子的自旋角动量(SAM)和轨道角动量(OAM)都已被用于扩展量子信息、光通信和信息处理的维度,其中人们高度期待能够用单个元件和单次测量同时检测SAM和OAM。在此,展示了一种基于单个方位角二次相位超表面的光子动量变换(PMT),并将其用于涡旋识别。由于不同的涡旋通过PMT在横向平面上被转换为具有不同方位角坐标的聚焦图案,因此可以通过单次测量确定大模式空间内的OAM。此外,还提出了自旋控制的双功能PMT用于同时进行SAM和OAM分选,这由一个合并了几何相位和动态相位的单个自旋解耦超表面实现。有趣的是,我们提出的方法可以检测具有相位和偏振奇点的矢量涡旋,以及具有一定间隔步长的叠加涡旋。在可见光波段的几个波长处获得的实验结果与数值模拟结果吻合良好。凭借超紧凑的器件尺寸、简单的光学配置和出色的涡旋识别能力等优点,我们的方法可能为集成和高维光学及量子系统的发展奠定基础。