Toward high-speed visible laser lighting based optical wireless communications

IF 7.4 1区 物理与天体物理 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC Progress in Quantum Electronics Pub Date : 2019-09-01 DOI:10.1016/j.pquantelec.2019.100225
Cheng-Ting Tsai , Chih-Hsien Cheng , Hao-Chung Kuo , Gong-Ru Lin
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引用次数: 57

Abstract

Visible wavelength light-emitting diodes (LEDs) and laser diodes (LDs) enabled optical wireless communication (OWC) is an emerging technology for realizing high-confidentiality and high-speed point-to-point (PtP), vehicle-to-vehicle, and white-lighting data access links in indoor/outdoor free-space and underwater environments. Notably, OWC facilitates users to access more transmission bandwidth and capacity with physical-layer security and electromagnetic-immunity features by utilizing unlicensed visible optical carriers bands covering from 400 to 800 THz as compared to the commonly employed radio-frequency bands. Hence, a large amount of heavy data exchanging, routing, and streaming traffics can be realized in the current wireless networks. This also reinforces the realistic fusion of optical fiber wireline, radio-frequency wireless, and visible lighting communication networks in the new big-data era. In this paper, developing progress as well as the current trend of visible LED and LD based OWC networks for PtP, white-lighting and underwater applications are overviewed in detail. The performance parameters and figures-of-merits of previously reported OWC systems are summarized for comparison and discussion. Three main scenarios including visible LED based lighting OWC, visible LD enabled PtP communication, and LD based white-light fidelity (“Li-Fi”) are individually discussed and summarized with their allowable data rate, transmission distance, and lighting color temperature and rendering index for comparison. At first, the transmission performances of LED based PtP and white-lighting OWC system with the use of novel data formats, such as pulse amplitude modulation and quadrature amplitude modulation-orthogonal frequency division multiplexing, are surveyed to understand the increasing trend on transmission capacity of LED based OWC system. Owing to the limited bandwidth and data rate of LED based OWC system, the LD has gradually been regarded as a competitive alternative candidate transmitter due to their significantly broadened bandwidth and enhanced data capacity. By taking the aforementioned advantages, studies on the blue/violet LD based white-lighting OWC have recently emerged to demonstrate the substitutability of this technology. The impacts of LD based OWC technology with its state-of-the-art implementation are comprehensively discussed together with prospects for future developments. Undoubtedly, the blue/violet LDs are also a promising transmitter for underwater PtP transmission owing to its extremely low power extinction in water, which has recently emerged as the most intriguing source for undersea exploration and sensing applications.

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以高速可见激光照明为基础的光学无线通信
可见光波长发光二极管(led)和激光二极管(ld)支持的光无线通信(OWC)是一种新兴技术,用于在室内/室外自由空间和水下环境中实现高保密性和高速点对点(PtP)、车对车和白光数据访问链路。值得注意的是,与常用的无线电频段相比,OWC通过使用覆盖400至800 太赫兹的无许可可见光载波频段,使用户能够获得更多的传输带宽和容量,具有物理层安全性和电磁抗抗特性。因此,在当前的无线网络中可以实现大量繁重的数据交换、路由和流业务。这也加强了光纤有线、射频无线和可见照明通信网络在新大数据时代的现实融合。本文详细综述了基于可见LED和LD的光控网络在PtP、白光照明和水下应用方面的发展进展和当前趋势。总结了以往报道的OWC系统的性能参数和优点,以便进行比较和讨论。本文分别讨论了三种主要场景,包括基于可见LED的照明OWC、基于可见LD的PtP通信和基于LD的白光保真度(Li-Fi),并总结了它们的允许数据速率、传输距离、照明色温和渲染指数,以供比较。首先,研究了采用脉冲调幅和正交调幅-频分复用等新型数据格式的LED光传输系统的传输性能,了解了LED光传输系统传输容量的增长趋势。由于基于LED的OWC系统的带宽和数据速率有限,LD由于其显着拓宽了带宽和增强了数据容量而逐渐被视为具有竞争力的候选发射机。利用上述优点,最近出现了基于蓝/紫LD的白色照明OWC的研究,以证明该技术的可替代性。全面讨论了基于LD的OWC技术的影响及其最先进的实现,并展望了未来的发展。毫无疑问,由于其在水中极低的功耗,蓝色/紫色lcd也是一种很有前途的水下PtP传输发射机,最近已成为海底勘探和传感应用中最有趣的来源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Progress in Quantum Electronics
Progress in Quantum Electronics 工程技术-工程:电子与电气
CiteScore
18.50
自引率
0.00%
发文量
23
审稿时长
150 days
期刊介绍: Progress in Quantum Electronics, established in 1969, is an esteemed international review journal dedicated to sharing cutting-edge topics in quantum electronics and its applications. The journal disseminates papers covering theoretical and experimental aspects of contemporary research, including advances in physics, technology, and engineering relevant to quantum electronics. It also encourages interdisciplinary research, welcoming papers that contribute new knowledge in areas such as bio and nano-related work.
期刊最新文献
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