3.76-Gbps yellow-light visible light communication system over 1.2 m free space transmission utilizing a Si-substrate LED and a cascaded pre-equalizer network

Author:

Shi Jianyang12ORCID,Xiao Weihuang3,Ha YinaerORCID,Niu Wenqing,Xu Zengyi,Huang Ouhan,Liu Yu3,Li Ziwei124ORCID,Shen Chao124ORCID,Zhang Junwen124ORCID,Zhang Jianli3,Wang Guangxu3,Yu Shaohua4,Chi Nan12ORCID

Affiliation:

1. Shanghai Engineering Research Center of Low-Earth-Orbit Satellite Communication and Applications

2. Shanghai Collaborative Innovation Center of Low-Earth-Orbit Satellite Communication Technology

3. Nanchang University

4. Peng Cheng Laboratory

Abstract

Recently, visible light communication (VLC) has emerged as a promising communication method in 6G. To achieve 6G high-speed transmission, wavelength division multiplexing (WDM) based VLC systems are a highly promising candidate. However, the “yellow and green gap” greatly limits the yellow light efficiency of InGaN-based LEDs and also restricts the transmission rate of yellow LEDs. In addition, pre-equalization and post-equalization also have an important impact on high-speed communication. In this paper, we propose to employ a vertical InGaN-based Si-substrate yellow LED with bit-power loading discrete multitone (DMT) modulation and a novel cascaded pre-equalizer network to achieve a high-speed yellow-light VLC system. The proposed cascaded pre-equalizer network is based on a digital Zobel network and a partial nonlinear pre-equalizer (DZNPN). The microscopic time-domain transient response of the high-speed and large-amplitude signal is also investigated to show a severe impairment. Utilizing the DZNPN cascaded pre-equalizer network based on the third-order Volterra series, a record-breaking data rate of 3.764Gbps over 1.2 m free space and 3.808Gbps over 0.7 m are experimentally demonstrated under the hard decision-forward error correction (HD-FEC) threshold of 3.8 × 10−3. The rate can be improved from 2.818Gbps to 3.764Gbps with 650Mbaud compared to the un-preprocessed signal. This is the highest data rate ever reported for yellow-light VLC systems based on a single LED to the best of our knowledge.

Funder

National Natural Science Foundation of China

Major Key Project of PCL

China Postdoctoral Science Foundation

National Postdoctoral Program for Innovative Talents

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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