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Ultrahigh-efficiency solution-processed simplified small-molecule organic light-emitting diodes using universal host materials
Author(s) -
TaeHee Han,
Miri Choi,
ChanWoo Jeon,
YunHi Kim,
SoonKi Kwon,
TaeWoo Lee
Publication year - 2016
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.1601428
Subject(s) - oled , solution process , materials science , optoelectronics , electroluminescence , phosphorescence , diode , quantum efficiency , solid state lighting , vacuum deposition , luminous efficacy , light emitting diode , fluorescence , nanotechnology , thin film , layer (electronics) , optics , physics
Although solution processing of small-molecule organic light-emitting diodes (OLEDs) has been considered as a promising alternative to standard vacuum deposition requiring high material and processing cost, the devices have suffered from low luminous efficiency and difficulty of multilayer solution processing. Therefore, high efficiency should be achieved in simple-structured small-molecule OLEDs fabricated using a solution process. We report very efficient solution-processed simple-structured small-molecule OLEDs that use novel universal electron-transporting host materials based on tetraphenylsilane with pyridine moieties. These materials have wide band gaps, high triplet energy levels, and good solution processabilities; they provide balanced charge transport in a mixed-host emitting layer. Orange-red (~97.5 cd/A, ~35.5% photons per electron), green (~101.5 cd/A, ~29.0% photons per electron), and white (~74.2 cd/A, ~28.5% photons per electron) phosphorescent OLEDs exhibited the highest recorded electroluminescent efficiencies of solution-processed OLEDs reported to date. We also demonstrate a solution-processed flexible solid-state lighting device as a potential application of our devices.

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