Japanese Journal of Applied Physics · 2004 · 77 citations · 19 references
Optical MaterialsEngineeringOrganic ElectronicsOptoelectronic DevicesLuminescence PropertyEl EfficiencyElectronic DevicesPhotodetectorsLight-emitting DiodesElectrical EngineeringOptoelectronic MaterialsOrganic SemiconductorNew Lighting TechnologyMultilayer Organic LightOrganic MaterialsWo 3White OledSolid-state LightingElectronic MaterialsApplied PhysicsMultiple Emitting UnitsOptoelectronics
In this paper, we report on the fabrication of multilayer organic light emitting diodes (OLEDs) with high electroluminescent (EL) yield achieved by integrating two units of green-emissive devices in series. The architecture of the device used in the experiment is Indium–Tin–Oxid (ITO)/CuPc/NPB/C545T:Alq 3 /Alq 3 /Mg:Alq 3 /WO 3 /NPB/C545T:Alq 3 /Alq 3 /LiF/Al. We found the efficiency of the two-unit devices can be controllable by the thickness of WO 3 . The two-unit devices with 1-nm-thick WO 3 produces the luminance efficiency of 49.2 cd/A at 20 mA/cm 2 , which is around four times that of the controlled single-unit device (ITO/CuPc/NPB/C545T:Alq 3 /Alq 3 /LiF/Al). Compared with reported research data, the “amplification effect” discovered in our device is a rather unexpected result. The external quantum efficiency of 12.6%, with near-saturated Commission Internationale d'Eclairage coordinates (CIE x =0.27, CIE y =0.68), is one of the best ever reported for a fluorescent dye-doped OLED. We also demonstrate that the electron injection layer of Mg:Alq 3 is a necessary component for the enhancement of EL efficiency. These results may prove to be an effective method to enhance the efficiency as well as the lifetime of current OLEDs.
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Organic electroluminescent diodes
Chak Wah Tang, S. A. VanSlyke · Applied Physics Letters · 1987 · 14.1K citations
Improved quantum efficiency for electroluminescence in semiconducting polymers
Yong Cao, Ian D. Parker, Gang Yu et al. · Nature · 1999 · 818 citations