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Double Metal Oxide Electron Transport Layers for Colloidal Quantum Dot Light-Emitting Diodes

Authors
Park, MyeongjinRoh, JeongkyunLim, JaehoonLee, HyunkooLee, Donggu
Issue Date
Apr-2020
Publisher
MDPI
Keywords
quantum dot (QD); light emitting diode (LED); metal oxide; double electron transport layer (ETL); SnO2 nanoparticles
Citation
NANOMATERIALS, v.10, no.4
Journal Title
NANOMATERIALS
Volume
10
Number
4
URI
https://scholarworks.sookmyung.ac.kr/handle/2020.sw.sookmyung/1527
DOI
10.3390/nano10040726
ISSN
2079-4991
2079-4991
Abstract
The performance of colloidal quantum dot light-emitting diodes (QD-LEDs) have been rapidly improved since metal oxide semiconductors were adopted for an electron transport layer (ETL). Among metal oxide semiconductors, zinc oxide (ZnO) has been the most generally employed for the ETL because of its excellent electron transport and injection properties. However, the ZnO ETL often yields charge imbalance in QD-LEDs, which results in undesirable device performance. Here, to address this issue, we introduce double metal oxide ETLs comprising ZnO and tin dioxide (SnO2) bilayer stacks. The employment of SnO2 for the second ETL significantly improves charge balance in the QD-LEDs by preventing spontaneous electron injection from the ZnO ETL and, as a result, we demonstrate 1.6 times higher luminescence efficiency in the QD-LEDs. This result suggests that the proposed double metal oxide ETLs can be a versatile platform for QD-based optoelectronic devices.
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