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Shuming Chen

Researcher at Southern University of Science and Technology

Publications -  200
Citations -  9300

Shuming Chen is an academic researcher from Southern University of Science and Technology. The author has contributed to research in topics: Quantum dot & Light-emitting diode. The author has an hindex of 44, co-authored 186 publications receiving 7429 citations. Previous affiliations of Shuming Chen include Sun Yat-sen University & University Grants Committee.

Papers
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Journal ArticleDOI

High-efficiency and high-contrast phosphorescent top-emitting organic light-emitting devices with p-type Si anodes

TL;DR: High-efficiency and high-contrast phosphorescent topemitting organic light-emitting devices (OLEDs) by employing the low reflectance p-type Si bottom anodes and the high transmittance Cs(2)CO(3)/Ag top cathodes for effective hole and electron injection are reported.
Journal ArticleDOI

Tuning the electronic nature of aggregation-induced emission chromophores with enhanced electron-transporting properties

TL;DR: In this article, an oxadiazole-containing tetraphenylethene TPE-Oxa is synthesized and its optical physics and electronic properties are investigated. And the two-layer OLED devices are shown to have superior performance, i.e., lower turn-on voltage, higher brightness and efficiencies, to the devices of typical configuration with a dedicated electron-transporting layer.
Journal ArticleDOI

Aggregation-Induced Delayed Fluorescence Luminogens for Efficient Organic Light-Emitting Diodes.

TL;DR: Inspired by their AIDF nature, the green-emission non-doped OLEDs based on them are fabricated, which afford good electroluminescence performances, with low turn-on voltages and very small efficiency roll-off.
Patent

Light emitting tetraphenylene derivatives, its method for preparation and light emitting device using the same derivatives

TL;DR: In this paper, a light emitting material comprising one or more tetraphenylethene (TPE) derivatives of formula (1a) with high thermal stability and high solid state quantum yield efficiency is presented.