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Nano-particle based scattering layers for optical efficiency enhancement of organic light-emitting diodes and organic solar cells.

Authors :
Chang, Hong-Wei
Lee, Jonghee
Hofmann, Simone
Hyun Kim, Yong
Müller-Meskamp, Lars
Lüssem, Björn
Wu, Chung-Chih
Leo, Karl
Gather, Malte C.
Source :
Journal of Applied Physics. May2013, Vol. 113 Issue 20, p204502. 8p. 2 Charts, 4 Graphs.
Publication Year :
2013

Abstract

The performance of both organic light-emitting diodes (OLEDs) and organic solar cells (OSC) depends on efficient coupling between optical far field modes and the emitting/absorbing region of the device. Current approaches towards OLEDs with efficient light-extraction often are limited to single-color emission or require expensive, non-standard substrates or top-down structuring, which reduces compatibility with large-area light sources. Here, we report on integrating solution-processed nano-particle based light-scattering films close to the active region of organic semiconductor devices. In OLEDs, these films efficiently extract light that would otherwise remain trapped in the device. Without additional external outcoupling structures, translucent white OLEDs containing these scattering films achieve luminous efficacies of 46 lm W-1 and external quantum efficiencies of 33% (both at 1000 cd m-2). These are by far the highest numbers ever reported for translucent white OLEDs and the best values in the open literature for any white device on a conventional substrate. By applying additional light-extraction structures, 62 lm W-1 and 46% EQE are reached. Besides universally enhancing light-extraction in various OLED configurations, including flexible, translucent, single-color, and white OLEDs, the nano-particle scattering film boosts the short-circuit current density in translucent organic solar cells by up to 70%. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00218979
Volume :
113
Issue :
20
Database :
Academic Search Index
Journal :
Journal of Applied Physics
Publication Type :
Academic Journal
Accession number :
87926273
Full Text :
https://doi.org/10.1063/1.4807000