Novel Star-shaped Hole-transporting Materials Based on Triphenylamine Cores End-capped with Carbazole and Triarylamine Derivatives for use in OLEDs
Author:
Affiliation:
1. Division of Bio-Nanochemistry, College of Natural Sciences; Wonkwang University; Chonbuk 570-749 Republic of Korea
2. Department of Information Display; Kyung Hee University; Seoul 130-701 Republic of Korea
Funder
Ministry of Education, Science Technology (MEST)
Korea Industrial Technology Foundation (KOTEF)
Publisher
Wiley
Subject
General Chemistry
Reference19 articles.
1. Influence of the hole transport layer on the performance of organic light-emitting diodes
2. Light-Emitting Carbazole Derivatives: Potential Electroluminescent Materials
3. Thermally stable multilared organic electroluminescent devices using novel starburst molecules, 4,4′,4″-Tri(N-carbazolyl)triphenylamine (TCTA) and 4,4′,4″-Tris(3-methylphenylphenylamino)triphenylamine (m-MTDATA), as hole-transport materials
4. Diphenylthienylamine-Based Star-Shaped Molecules for Electroluminescence Applications
5. Green and Yellow Electroluminescent Dipolar Carbazole Derivatives: Features and Benefits of Electron-Withdrawing Segments
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1. Understanding excited state properties of host materials in OLEDs: simulation of absorption spectrum of amorphous 4,4-bis(carbazol-9-yl)-2,2-biphenyl (CBP);Physical Chemistry Chemical Physics;2022
2. Synthesis of Conjugated Copolymer Containing Spirobifluorene Skeleton by Acyclic Diene Metathesis Polymerization for Polymer Light‐Emitting Diode Applications;Bulletin of the Korean Chemical Society;2021-04-29
3. Fluorene–Triphenylamine-Based Bipolar Materials: Fluorescent Emitter and Host for Yellow Phosphorescent OLEDs;Applied Sciences;2020-01-10
4. Star-shaped triarylamines – One-step metal-free synthesis and optoelectronic properties;Synthetic Metals;2019-10
5. Thermally stable efficient hole transporting materials based on carbazole and triphenylamine core for red phosphorescent OLEDs;Organic Electronics;2017-12
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