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Gong-Ru Lin

Researcher at National Taiwan University

Publications -  45
Citations -  400

Gong-Ru Lin is an academic researcher from National Taiwan University. The author has contributed to research in topics: Visible light communication & Quadrature amplitude modulation. The author has an hindex of 7, co-authored 45 publications receiving 186 citations. Previous affiliations of Gong-Ru Lin include National Chiao Tung University.

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Filtered Multicarrier OFDM Encoding on Blue Laser Diode for 14.8-Gbps Seawater Transmission

TL;DR: In this paper, a GaN blue laser diode (BLD)-based visible-light communication link is demonstrated in a seawater environment to provide 16-quadrature amplitude modulation orthogonal frequency-division multiplexing (QAM OFDM) data transmission at 14.8 Gbps over 1.7 m.
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Micro-LED as a Promising Candidate for High-Speed Visible Light Communication

TL;DR: This review paper provides a brief overview of the VLC-based system performance and some of its potential prospects, focusing on VLC applications based on LEDs but mainly on semipolar μ- LEDs and μ-LED-based arrays with high bandwidths.
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Modal Linewidth Dependent Transmission Performance of 850-nm VCSELs With Encoding PAM-4 Over 100-m MMF

TL;DR: By changing the transverse-mode spectral linewidth of VCSELs at 850 nm, the directly encoded four-level pulse amplitude modulation data transmission performance over 100m-long OM4 multimode fiber (MMF) is demonstrated and compared in this paper.
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Single-Mode VCSEL Transmission for Short Reach Communications

TL;DR: In this article, the advantages of single-mode VCSELs lie primarily on the narrower linewidth, lower numerical aperture, and smaller spot size compared to multimode VCSels.
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Ultrafast 2 × 2 green micro-LED array for optical wireless communication beyond 5 Gbit/s

TL;DR: In this article, a green 2×2 micro light-emitting diode (μ-LED) array with nanostructured grating patterns grown on a semipolar (20-21)-oriented gallium nitride (GaN) buffered layer on (22-43)-oriented sapphire substrate is specially transistor-outline can (TO-can) packaged with a sub-miniature-A (SMA) connector for high-speed data communication beyond 5Gbit/s.