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基于可重构多输入多输出的自供电无电池光通信系统。

Reconfigurable MIMO-based self-powered battery-less light communication system.

作者信息

De Oliveira Filho Jose Ilton, Trichili Abderrahmen, Alkhazragi Omar, Alouini Mohamed-Slim, Ooi Boon S, Salama Khaled Nabil

机构信息

Computer, Electrical and Mathematical Sciences & Engineering, King Abdullah University of Science and Technology, Thuwal, Saudi Arabia.

NEOM Institute for Ocean Science and Solutions, Neom, Thuwal, Saudi Arabia.

出版信息

Light Sci Appl. 2024 Aug 28;13(1):218. doi: 10.1038/s41377-024-01566-3.

Abstract

Simultaneous lightwave information and power transfer (SLIPT), co-existing with optical wireless communication, holds an enormous potential to provide continuous charging to remote Internet of Things (IoT) devices while ensuring connectivity. Combining SLIPT with an omnidirectional receiver, we can leverage a higher power budget while maintaining a stable connection, a major challenge for optical wireless communication systems. Here, we design a multiplexed SLIPT-based system comprising an array of photodetectors (PDs) arranged in a 3 × 3 configuration. The system enables decoding information from multiple light beams while simultaneously harvesting energy. The PDs can swiftly switch between photoconductive and photovoltaic modes to maximize information transfer rates and provide on-demand energy harvesting. Additionally, we investigated the ability to decode information and harvest energy with a particular quadrant set of PDs from the array, allowing beam tracking and spatial diversity. The design was explored in a smaller version for higher data rates and a bigger one for higher power harvesting. We report a self-powering device that can achieve a gross data rate of 25.7 Mbps from a single-input single-output (SISO) and an 85.2 Mbps net data rate in a multiple-input multiple-output (MIMO) configuration. Under a standard AMT1.5 illumination, the device can harvest up to 87.33 mW, around twice the power needed to maintain the entire system. Our work paves the way for deploying autonomous IoT devices in harsh environments and their potential use in space applications.

摘要

与光无线通信共存的同时光波信息与功率传输(SLIPT),在确保连接性的同时为远程物联网(IoT)设备提供持续充电方面具有巨大潜力。将SLIPT与全向接收器相结合,我们可以在保持稳定连接的同时利用更高的功率预算,这是光无线通信系统面临的一项重大挑战。在此,我们设计了一种基于复用SLIPT的系统,该系统由以3×3配置排列的光电探测器(PD)阵列组成。该系统能够在同时收集能量的情况下解码来自多个光束的信息。这些PD可以在光电导和光伏模式之间快速切换,以最大化信息传输速率并提供按需能量收集。此外,我们研究了使用阵列中特定象限的一组PD解码信息和收集能量的能力,从而实现光束跟踪和空间分集。该设计针对更高数据速率探索了较小版本,针对更高功率收集探索了较大版本。我们报告了一种自供电设备,在单输入单输出(SISO)配置下可实现25.7 Mbps的总数据速率,在多输入多输出(MIMO)配置下可实现85.2 Mbps的净数据速率。在标准AMT1.5光照下,该设备可收集高达87.33 mW的能量,约为维持整个系统所需功率的两倍。我们的工作为在恶劣环境中部署自主物联网设备及其在太空应用中的潜在用途铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e9c/11358267/7a0af96dfbbf/41377_2024_1566_Fig1_HTML.jpg

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