He Kai, Ning Tigang, Li Jing, Zheng Jingjing, Pei Li, Wang Jianshuai
Opt Express. 2024 May 6;32(10):16732-16745. doi: 10.1364/OE.520896.
The orbital angular momentum (OAM) of vortex beams has great potential in optical communications due to its communication confidentiality and low crosstalk. It is necessary to design a plausible OAM pattern recognition mechanism. Abandoning AI models that require large datasets, a single passive all-dielectric metasurface consisting of TiO nanopillars on a SiO substrate is used to recognize high-order optical vortexes. In this configuration, the proposed device is capable of simultaneously encoding the wavefront and the transmission paths in different incident OAM beams. Due to the presence of spin angular momentum (SAM), the vortex beam to be identified is spatially separated after passing through the metasurface. As a proof of concept, 14 signal channels are considered in the constructed metasurface, 12 of them can be encoded at will for the detection of any vortex beam with a predefined topological charge. These results make use of metasurfaces to enable OAM pattern recognition in an effective way, which may open avenues for the ultimate miniaturization of optical vortex communication and advanced OAM detection technologies.
涡旋光束的轨道角动量(OAM)因其通信保密性和低串扰性,在光通信中具有巨大潜力。设计一种合理的OAM模式识别机制很有必要。摒弃需要大量数据集的人工智能模型,采用一种由SiO衬底上的TiO纳米柱组成的单一无源全介质超表面来识别高阶光学涡旋。在这种配置下,所提出的器件能够同时对不同入射OAM光束中的波前和传输路径进行编码。由于自旋角动量(SAM)的存在,待识别的涡旋光束在穿过超表面后在空间上分离。作为概念验证,在所构建的超表面中考虑了14个信号通道,其中12个可以随意编码,用于检测任何具有预定义拓扑电荷的涡旋光束。这些结果利用超表面以有效的方式实现了OAM模式识别,这可能为光学涡旋通信的最终小型化和先进的OAM检测技术开辟道路。