| Literature DB >> 26687488 |
Lu-Hai Xu1, Qing-Dong Ou1, Yan-Qing Li1, Yi-Bo Zhang1, Xin-Dong Zhao1, Heng-Yang Xiang1, Jing-De Chen1, Lei Zhou1, Shuit-Tong Lee1, Jian-Xin Tang1.
Abstract
Flexible organic light-emitting diodes (OLEDs) hold great promise for future bendable display and curved lighting applications. One key challenge of high-performance flexible OLEDs is to develop new flexible transparent conductive electrodes with superior mechanical, electrical, and optical properties. Herein, an effective nanostructured metal/dielectric composite electrode on a plastic substrate is reported by combining a quasi-random outcoupling structure for broadband and angle-independent light outcoupling of white emission with an ultrathin metal alloy film for optimum optical transparency, electrical conduction, and mechanical flexibility. The microcavity effect and surface plasmonic loss can be remarkably reduced in white flexible OLEDs, resulting in a substantial increase in the external quantum efficiency and power efficiency to 47.2% and 112.4 lm W(-1).Entities:
Keywords: flexible OLED; light outcoupling; photonic structure; transparent composite electrode; white OLED
Year: 2015 PMID: 26687488 DOI: 10.1021/acsnano.5b07302
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881