Mode manipulation in a ring–core fiber for OAM monitoring and conversion
Author:
Wu Guowei1ORCID, Gao Shecheng1, Tu Jiajing1, Shen Lei2, Feng Yuanhua1, Sui Qi3, Liu Weiping1, Li Zhaohui34
Affiliation:
1. Department of Electronic Engineering, College of Information Science and Technology , Jinan University , Guangzhou 510632 , China 2. State Key Laboratory of Optical Fiber and Cable Manufacture Technology, Yangtze Optical Fiber and Cable Joint Stock Limited Company , Wuhan 430073 , China 3. Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai) , Zhuhai 519000 , China 4. Key Laboratory of Optoelectronic Materials and Technologies, School of Electrical and Information Technology , Sun Yat-sen University , Guangzhou 510275 , China
Abstract
Abstract
The monitoring and conversion of photonic orbital angular momentum (OAM) play fundamental and important roles for both classic and quantum technologies, especially in low-loss transmission media such as ring-core fibers (RCFs), which make many OAM applications practical or vastly more flexible. However, in a RCF, the modes associated with different OAM states are highly overlapping due to the circular refractive index distribution structure, which makes it difficult to distinguish and monitor the OAM modes and in turn limits its inline conversion. Here, we report the first experimental realization of mode monitoring in a RCF using mode filters (MFs), which takes advantage of the difference in the mode adiabatic evolution and the higher-order mode cutoff conditions in tapered RCFs. Different-order OAM can be filtered using MFs with different geometric parameters, as demonstrated by the linearly polarized mode intensity. Combined the mode manipulations in RCF and single-mode fiber, the fundamental mode coupling efficiency can reach 90%, the RCF mode conversion monitoring through inline transmission spectrum evolution can be realized, and the inline fabrication of RCF grating, which couples one mode to a desired mode, can be demonstrated by the fabricating process of three long-period fiber gratings. The mode conversion efficiency between 0-order and 1, 2- or 3-order OAM modes exceeds 96%. Our work provides an efficient approach to monitor and convert OAM modes in higher-order mode supporting RCFs and even other special fibers and further promotes the improvement of the capacity of OAM transmission in RCFs.
Funder
National Key Research and Development Program of China Key-Area Research and Development Program of Guangdong Province National Natural Science Foundation of China Guangdong Basic and Applied Basic Research Foundation Guangzhou Science and Technology Program key projects
Publisher
Walter de Gruyter GmbH
Subject
Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology
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