Hayle Stotaw Talbachew, Lu Hai-Han, Lin Hsiao-Mei, Wang Chia-Peng, Li Chung-Yi, Wu Tsai-Man, Lin Chih-Hong, Chen Wei-Xiang, Jin Jia-Lian, Xu Yan-Zhen
Institute of Electro-Optical Engineering, National Taipei University of Technology, Taipei, 10608, Taiwan.
Department of Interaction Design, National Taipei University of Technology, Taipei, 10608, Taiwan.
Sci Rep. 2024 Sep 27;14(1):22252. doi: 10.1038/s41598-024-73651-x.
A two-way fifth-generation (5G) new radio (NR) free-space optical (FSO)-hollow-core fibre (HCF)-underwater wireless optical communication (UWOC) converged systems with a red/green/blue (R/G/B) 3-wavelengths and spatial light modulator (SLM)-based beam-tracking scheme is practically built. It is the first to practically build a two-way FSO-HCF-UWOC converged system with high-speed and long-distance optical wireless-wired-underwater wireless communication characteristics. It shows a 5G NR FSO-HCF-UWOC convergence from drone or buildings to undersea, using R/G/B 3-wavelengths and an SLM as a demonstration. The R/G/B 3-wavelengths are used to enhance the downstream and upstream aggregate transmission rates. An SLM with electrical comparator is used to adjust the laser beam and mitigate laser beam misalignment caused by drone movement or ocean flow. Over a hybrid of 1-km FSO, 10-m HCF, and 10.44-m ocean water-air-ocean water medium, downstream/upstream 5G-millimeter-wave (MMW) 9.1-Gb/s/24-GHz signals are transmitted with satisfactorily low bit error rates and error vector magnitudes, as well as distinct constellations. This demonstrated that the 5G NR FSO-HCF-UWOC converged system exhibits promising potential as it advances the scenario implemented by the 5G-MMW signals over FSO, HCF, and UWOC convergence, paving the way for high-speed and long-distance communications across diverse media.
一种基于红/绿/蓝(R/G/B)三波长和空间光调制器(SLM)的光束跟踪方案的双向第五代(5G)新无线电(NR)自由空间光(FSO)-空芯光纤(HCF)-水下无线光通信(UWOC)融合系统已实际构建完成。这是首次实际构建具有高速和长距离光无线-有线-水下无线通信特性的双向FSO-HCF-UWOC融合系统。它展示了从无人机或建筑物到海底的5G NR FSO-HCF-UWOC融合,以R/G/B三波长和SLM作为演示。R/G/B三波长用于提高下行和上行聚合传输速率。带有电比较器的SLM用于调整激光束,并减轻由无人机移动或海流引起的激光束对准误差。在1公里的FSO、10米的HCF和10.44米的海水-空气-海水介质的混合环境中,下行/上行5G毫米波(MMW)9.1 Gb/s/24 GHz信号以令人满意的低误码率和误差矢量幅度以及清晰的星座图进行传输。这表明5G NR FSO-HCF-UWOC融合系统具有广阔的潜力,因为它推动了5G-MMW信号通过FSO、HCF和UWOC融合实现的场景,为跨多种介质的高速和长距离通信铺平了道路。