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基于发光二极管的可见光通信高效光学天线的蒙特卡洛/时域有限差分法研究

A Monte-Carlo/FDTD Study of High-Efficiency Optical Antennas for LED-Based Visible Light Communication.

作者信息

Fakhri Darya, Alidoust Farid, Rostami Ali, Mirtaheri Peyman

机构信息

OIC Research Group, Faculty of Electrical and Computer Engineering, University of Tabriz, Tabriz 5166614761, Iran.

SP-EPT Laboratory, ASEPE Company, Industrial Park of Advanced Technologies, Tabriz 5364196795, Iran.

出版信息

Nanomaterials (Basel). 2022 Oct 13;12(20):3594. doi: 10.3390/nano12203594.

Abstract

In high-speed wireless communication, visible light communication is considered an emerging and cutting-edge technology. A light-emitting diode can serve both as an illumination source in an environment and as a data transmitter. Nevertheless, plenty of complications stand in the way of developing VLC technology, including the low response time of waveguides and detectors and the field of view dependence of such devices. To cover those challenges, one approach is to develop a superior optical antenna that does not have a low response time related to phosphorescence materials and should also support concentrating light from the surroundings with a wide field of view. This research paper presents an optimized cylindrical optical antenna with benefits, such as affordable cost, fast response time due to high-efficient nanomaterials, and a wide field of view (FOV). The proposed structure avoids the need for intricate tracking systems and active pointing to the source, but it can also be integrated into portable devices. For the analysis of nanomaterials' characteristics, finite difference time domain simulations are used, and Monte-Carlo raytracing is used to study the proposed optical antenna. It was found that the antenna's optical efficiency varies from 1 to 29% depending on the size and the number of nanomaterials inside. Compared to other works, this paper shows higher efficiencies and wider FOV.

摘要

在高速无线通信中,可见光通信被视为一项新兴的前沿技术。发光二极管既可以作为环境中的照明源,也可以作为数据发射器。然而,众多复杂问题阻碍着可见光通信技术的发展,包括波导和探测器的低响应时间以及此类设备对视角的依赖性。为应对这些挑战,一种方法是开发一种性能卓越的光学天线,这种天线不存在与磷光材料相关的低响应时间问题,并且还应支持以宽视角汇聚来自周围环境的光。本研究论文提出了一种优化的圆柱形光学天线,它具有成本低廉、因高效纳米材料而响应时间快以及宽视角等优点。所提出的结构无需复杂的跟踪系统和对光源的主动指向,而且还可以集成到便携式设备中。为分析纳米材料的特性,使用了时域有限差分模拟,并采用蒙特卡罗光线追踪法来研究所提出的光学天线。研究发现,天线的光学效率根据内部纳米材料的尺寸和数量在1%至29%之间变化。与其他研究相比,本文展示了更高的效率和更宽的视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d172/9606907/484be9f5ce2a/nanomaterials-12-03594-g001.jpg

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