DocumentCode
1354813
Title
Efficient organic electroluminescent devices using single-layer doped polymer thin films with bipolar carrier transport abilities
Author
Wu, Chung-Chih ; Sturm, James C. ; Register, Richard A. ; Tian, Jing ; Dana, Elena P. ; Tnompson, M.E.
Author_Institution
Dept. of Electr. Eng., Princeton Univ., NJ, USA
Volume
44
Issue
8
fYear
1997
fDate
8/1/1997 12:00:00 AM
Firstpage
1269
Lastpage
1281
Abstract
Detailed studies of electroluminescent devices made from single-layer doped polymer blend thin films having bipolar carrier transport abilities are presented. The active organic layer consists of the hole-transport polymer poly(N-vinylcarbazole) (PVK) containing dispersed electron-transport molecules, as well as different fluorescent small molecules or polymers as emitting centers to vary the emission color. Both the photoluminescence and electroluminescence (EL) properties are extensively studied. In photoluminescence, very efficient transfer of energy can occur from the host to very dilute (~1 wt.%) amounts of emitting materials. When covered with a metal layer, the intensity of photoluminescence from blend thin films was found to be dependent on the type of metal coverage. The optical and electrical properties of materials and devices were systematically studied to understand the operating mechanisms and to optimize the devices. In EL, excitons appear to be formed at doped emitting centers, rather than in the host. We show that in an optimized device, a relatively high external quantum efficiency (>1%, backside emission only) and a low operating voltage (<10 V for over 100 cd/m2) can be easily achieved by this class of devices. It was also found air-stable Ag is as good as reactive Mg-Ag alloy for the cathode contact in devices using PVK containing dispersed electron-transport oxadiazole molecules
Keywords
colour; electroluminescent devices; excitons; photoluminescence; polymer blends; polymer films; 10 V; Ag; Ag cathode contact; Mg-Ag alloy cathode contact; MgAg; PVK; bipolar carrier transport abilities; dispersed electron-transport oxadiazole molecules; doped emitting centers; electrical properties; electroluminescence properties; excitons; high external quantum efficiency; hole-transport polymer; low operating voltage; optical properties; organic electroluminescent devices; photoluminescence properties; poly(N-vinylcarbazole); polymer blend; single-layer doped polymer thin films; Electroluminescence; Electroluminescent devices; Fluorescence; Optical devices; Optical materials; Photoluminescence; Polymer films; Stimulated emission; Thin film devices; Transistors;
fLanguage
English
Journal_Title
Electron Devices, IEEE Transactions on
Publisher
ieee
ISSN
0018-9383
Type
jour
DOI
10.1109/16.605468
Filename
605468
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