Title :
Optimization of microcavity OLED by varying the thickness of multi-layered mirror
Author :
Albert W. Lu;J. Chan;A. D. Rakic;A. M. C. Ng;A. B. Djurisic
Author_Institution :
School of Information Technology and Electrical Engineering, The University of Queensland, Brisbane Qld4072, Australia
Abstract :
We optimized the emission efficiency from a microcavity OLEDs consisting of widely used organic materials, N,N´-di(naphthalene-1-yl)-N,N´-diphenylbenzidine (NPB) as a hole transport layer and tris (8-hydroxyquinoline) (Alq3) as emitting and electron transporting layer. LiF/Al was considered as a cathode, while metallic Ag anode was used. TiO2 and Al2 O3 layers were stacked on top of the cathode to alter the properties of the top mirror. The electroluminescence emission spectra, electric field distribution inside the device, carrier density, recombination rate and exciton density were calculated as a function of the position of the emission layer. The results show that for certain TiO2 and Al2O3 layer thicknesses, light output is enhanced as a result of the increase in both the reflectance and transmittance of the top mirror. Once the optimum structure has been determined, the microcavity OLED devices can be fabricated and characterized, and comparisons between experiments and theory can be made
Keywords :
"Microcavities","Organic light emitting diodes","Mirrors","Cathodes","Organic materials","Charge carrier processes","Electron emission","Anodes","Electroluminescent devices","Charge carrier density"
Conference_Titel :
Numerical Simulation of Semiconductor Optoelectronic Devices, 2006. NUSOD ´06. International Conference on
Print_ISBN :
0-7803-9755-X
Electronic_ISBN :
2158-3242
DOI :
10.1109/NUSOD.2006.306740