100 Gbps Indoor Access and 4.8 Gbps Outdoor Point-to-Point LiFi Transmission Systems Using Laser-Based Light Sources

被引:3
作者
Chen, Cheng [1 ]
Das, Sovan [2 ]
Videv, Stefan [1 ]
Sparks, Adrian [1 ]
Babadi, Sina [1 ]
Krishnamoorthy, Aravindh [3 ]
Lee, Changmin [2 ]
Grieder, Daniel [2 ]
Hartnett, Kathleen [2 ]
Rudy, Paul [2 ]
Raring, James [2 ]
Najafi, Marzieh [3 ]
Papanikolaou, Vasilis K. [3 ]
Schober, Robert [3 ]
Haas, Harald [1 ]
机构
[1] Univ Cambridge, Dept Engn, Cambridge CB3 0FA, England
[2] Kyocera SLD Laser Inc, Goleta, CA 93117 USA
[3] Friedrich Alexander Univ Erlangen Nurnberg, Inst Digital Commun, D-91054 Erlangen, Germany
基金
英国工程与自然科学研究理事会;
关键词
Light fidelity; Millimeter wave communication; Wireless communication; Lighting; Wavelength division multiplexing; Optical signal processing; Optical sensors; Laser diode; light-fidelity; optical wireless communication; surface mounting device; wavelength division multiplexing; WIRELESS; MODULATION;
D O I
10.1109/JLT.2024.3400192
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this paper, we demonstrate the communication capabilities of light-fidelity (LiFi) systems based on high-brightness and high-bandwidth integrated laser-based sources in a surface mount device (SMD) packaging platform. The laser-based source is able to deliver 450 lumens of white light illumination and the resultant light brightness is over $\bf{{1000}\,cd/mm<^>{2}}$. It is demonstrated that a wavelength division multiplexing (WDM) LiFi system with ten parallel channels is able to deliver over 100 Gbps data rate with the assistance of Volterra filter-based nonlinear equalisers. In addition, an aggregated transmission data rate of 4.8 Gbps has been achieved over a link distance of 500 m with the same type of SMD light source. This work demonstrates the scalability of LiFi systems that employ laser-based light sources, particularly in their capacity to enable high-speed short range, as well as long-range data transmission.
引用
收藏
页码:4146 / 4157
页数:12
相关论文
共 37 条
[1]   Terahertz Band Communication: An Old Problem Revisited and Research Directions for the Next Decade [J].
Akyildiz, Ian F. ;
Han, Chong ;
Hu, Zhifeng ;
Nie, Shuai ;
Jornet, Josep Miquel .
IEEE TRANSACTIONS ON COMMUNICATIONS, 2022, 70 (06) :4250-4285
[2]  
Barnoski M., 2012, Fundamentals of optical fiber communications
[3]   Current Challenges for Visible Light Communications Usage in Vehicle Applications: A Survey [J].
Cailean, Alin-Mihai ;
Dimian, Mihai .
IEEE COMMUNICATIONS SURVEYS AND TUTORIALS, 2017, 19 (04) :2681-2703
[4]   Downlink Performance of Optical Attocell Networks [J].
Chen, Cheng ;
Basnayaka, Dushyantha A. ;
Haas, Harald .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2016, 34 (01) :137-156
[5]   Speckle reduction using deformable mirrors with diffusers in a laser pico-projector [J].
Chen, Hsuan-An ;
Pan, Jui-Wen ;
Yang, Zu-Po .
OPTICS EXPRESS, 2017, 25 (15) :18140-18151
[6]   Phosphorous Diffuser Diverged Blue Laser Diode for Indoor Lighting and Communication [J].
Chi, Yu-Chieh ;
Hsieh, Dan-Hua ;
Lin, Chung-Yu ;
Chen, Hsiang-Yu ;
Huang, Chia-Yen ;
He, Jr-Hau ;
Ooi, Boon ;
DenBaars, Steven P. ;
Nakamura, Shuji ;
Kuo, Hao-Chung ;
Lin, Gong-Ru .
SCIENTIFIC REPORTS, 2015, 5
[7]  
Chun H, 2015, IEEE INT CONF COMM, P1392, DOI 10.1109/ICCW.2015.7247373
[8]   Creating the Perfect Illusion : What will it take to Create Life-Like Virtual Reality Headsets? [J].
Cuervo, Eduardo ;
Chintalapudi, Krishna ;
Kotaru, Manikanta .
HOTMOBILE'18: PROCEEDINGS OF THE 19TH INTERNATIONAL WORKSHOP ON MOBILE COMPUTING SYSTEMS & APPLICATIONS, 2018, :7-12
[9]  
Diniz P.S., 1997, Adaptive filtering
[10]  
Haas H., 2023, P IEEE EUR C OPT COM, P1597