High‐Performance 535‐nm Green Laser Diode Enabling Free‐Space and Underwater Optical Links

ABSTRACT There is a continuous growing demand for visible light communication (VLC) with high‐speed and low‐latency in both free‐space and underwater environments. However, green laser diodes (LDs) remain constrained by the long‐standing “green gap”, where material quality and device structure challenges limit their luminous efficiency and communication performance. Herein, we demonstrate a GaN‐based green LD emitting at 535 nm, incorporating InGaN multiple quantum wells with graded InGaN quantum barriers. Strikingly, the device achieves a light output power over 650 mW, a threshold current density of 2.6 kA/cm 2 , a narrow optical spectrum with a full width at half maximum of 3.4 nm, together with a wall‐plug efficiency above 6%, while maintaining excellent operational stability with only 7.74% power degradation after 960 h continuous‐wave operation. With a −3 dB modulation bandwidth over 1.3 GHz, the LD enables high‐speed data transmission, achieving data rates of 12.36 Gbps in free space and 8 Gbps in underwater environments using discrete multitone modulation. These results represent a significant advancement in overcoming the “green gap” and establish a promising platform for high‐performance GaN‐based visible light LDs in next‐generation high‐speed VLC systems.

Authors

Institutions

Publication Details

Journal
Laser & Photonics Review
Published
2026-09-12
DOI
https://doi.org/10.1002/lpor.71882
Primary Topic
Optical Wireless Communication Technologies
Type
article
Field-Weighted Citation Impact
0.00

Funders

Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

High‐Performance 535‐nm Green Laser Diode Enabling Free‐Space and Underwater Optical Links

Haiding Sun, Huabin Yu, Chao Shen, Muhammad Hunain Memon et al.
Laser & Photonics Review
Optical Wireless Communication Technologies
article

High‐Performance 535‐nm Green Laser Diode Enabling Free‐Space and Underwater Optical Links

Haiding Sun, Huabin Yu, Chao Shen, Muhammad Hunain Memon, Feilin Xun, Jinjian Zheng, Zeyu Tang, Zhen Yang, Yuchen Du, Yang Kang, Jiangyong Zhang, Zuochen Lyu
article en

Abstract

ABSTRACT There is a continuous growing demand for visible light communication (VLC) with high‐speed and low‐latency in both free‐space and underwater environments. However, green laser diodes (LDs) remain constrained by the long‐standing “green gap”, where material quality and device structure challenges limit their luminous efficiency and communication performance. Herein, we demonstrate a GaN‐based green LD emitting at 535 nm, incorporating InGaN multiple quantum wells with graded InGaN quantum barriers. Strikingly, the device achieves a light output power over 650 mW, a threshold current density of 2.6 kA/cm 2 , a narrow optical spectrum with a full width at half maximum of 3.4 nm, together with a wall‐plug efficiency above 6%, while maintaining excellent operational stability with only 7.74% power degradation after 960 h continuous‐wave operation. With a −3 dB modulation bandwidth over 1.3 GHz, the LD enables high‐speed data transmission, achieving data rates of 12.36 Gbps in free space and 8 Gbps in underwater environments using discrete multitone modulation. These results represent a significant advancement in overcoming the “green gap” and establish a promising platform for high‐performance GaN‐based visible light LDs in next‐generation high‐speed VLC systems.

Laser & Photonics Review
University of Science and Technology of China (CN), Fudan University (CN), Hua Hong Semiconductor (China) (CN)
Natural Science Foundation of Anhui Province
Openalex Percentile: Top 20%
Optical Wireless Communication Technologies
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.