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Erdan Gu

Researcher at University of Strathclyde

Publications -  269
Citations -  7946

Erdan Gu is an academic researcher from University of Strathclyde. The author has contributed to research in topics: Light-emitting diode & Visible light communication. The author has an hindex of 43, co-authored 265 publications receiving 6747 citations. Previous affiliations of Erdan Gu include University of Warwick & Facebook.

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A 3-Gb/s Single-LED OFDM-Based Wireless VLC Link Using a Gallium Nitride $\mu{\rm LED}$

TL;DR: In this article, the authors presented a visible light communication (VLC) system based on a single 50-μm gallium nitride light emitting diode (LED) with a 3-dB modulation bandwidth of at least 60 MHz.
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Visible-Light Communications Using a CMOS-Controlled Micro-Light- Emitting-Diode Array

TL;DR: In this paper, the authors reported the high-frequency modulation of individual pixels in 8 × 8 arrays of III-nitride-based micro-pixellated light-emitting diodes, where the pixels within the array range from 14 to 84 μ m in diameter.
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High Bandwidth GaN-Based Micro-LEDs for Multi-Gb/s Visible Light Communications

TL;DR: In this paper, the authors report on progress in the development of micro-scale GaN LEDs (micro-LEDs), optimized for visible light communications (VLC) using ON-OFF-keying, pulse-amplitude modulation and orthogonal frequency division multiplexing modulation schemes.
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Towards 10 Gb/s orthogonal frequency division multiplexing-based visible light communication using a GaN violet micro-LED

TL;DR: In this paper, an orthogonal frequency division multiplexing-based VLC system with adaptive bit and energy loading is demonstrated, and a data transmission rate of 11.95 GB/s is achieved with a violet micro-LED.
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Size-dependent light output, spectral shift, and self-heating of 400 nm InGaN light-emitting diodes

TL;DR: In this paper, the impact of device size scaling on the light output, spectral shift, and self-heating of 400 nm InGaN light-emitting diodes (LEDs) was systematically investigated.