物理
角动量
叠加原理
光学
空中骑兵
多路复用
衍射
梁(结构)
可控性
光纤
波长
光束
旋涡
相(物质)
相空间
轨道角动量复用
经典力学
动量(技术分析)
单模光纤
结构光
相量
光学镊子
模式(计算机接口)
量子力学
作者
Zekun Shi,Pan Wang,Zhi Wang,Y.M. Liu
标识
DOI:10.1002/lpor.202502805
摘要
ABSTRACT Complex vector fields such as Stokes skyrmions and total angular momentum (TAM) beams exhibit revolutionary potential in applications including communications, quantum information processing, and computing. However, beam diffraction and turbulence in free space restrict their controllability to short distances. Here, we propose and experimentally validate a novel framework that manipulates vector fields in a 2‐km few‐mode fiber (FMF) using only intensity measurements. We comprehensively demonstrate the accuracy and effectiveness of this approach, achieving (i) Stokes skyrmions with an average deviation in skyrmion number of only 0.65%; (ii) high‐dimensional superposition states with an average fidelity exceeding 98% constructed using TAM beams; and (iii) orbital angular momentum (OAM) and cylindrical vector (CV) modes with maximum (mean) purities of 99% (94%). In addition, we introduce a phase‐fluctuation‐resistant characterization method for skyrmions. By eliminating the need for phase detection in conventional schemes, our framework enables seamless switching across mode groups and wavelengths without any receiver‐side optical realignment and offers compatibility with diverse mode‐division multiplexing systems. This approach offers an accurate, fast, scalable, and cost‐effective solution for long‐distance control of structured light fields, and demonstrates strong potential for higher‐dimensional structured light customization.
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