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Kim, BongSoo
Polymer & Organic Semiconductor Lab.
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High-resolution patterning of colloidal quantum dots via non-destructive, light-driven ligand crosslinking

Author(s)
Yang, JeehyeHahm, DonghyoKim, KyunghwanRhee, SeunghyunLee, MyeongjaeKim, SeunghanChang, Jun HyukPark, Hye WonLim, JaehoonLee, MinkyoungKim, HyeokjunBang, JooheeAhn, HyungjuCho, Jeong HoKwak, JeonghunKim, BongSooLee, ChangheeBae, Wan KiKang, Moon Sung
Issued Date
2020-06
DOI
10.1038/s41467-020-16652-4
URI
https://scholarworks.unist.ac.kr/handle/201301/49524
Fulltext
https://www.nature.com/articles/s41467-020-16652-4
Citation
NATURE COMMUNICATIONS, v.11, no.1
Abstract
Establishing multi-colour patterning technology for colloidal quantum dots is critical for realising high-resolution displays based on the material. Here, we report a solution-based processing method to form patterns of quantum dots using a light-driven ligand crosslinker, ethane-1,2-diyl bis(4-azido-2,3,5,6-tetrafluorobenzoate). The crosslinker with two azide end groups can interlock the ligands of neighbouring quantum dots upon exposure to UV, yielding chemically robust quantum dot films. Exploiting the light-driven crosslinking process, different colour CdSe-based core-shell quantum dots can be photo-patterned; quantum dot patterns of red, green and blue primary colours with a sub-pixel size of 4 mu mx16 mu m, corresponding to a resolution of >1400 pixels per inch, are demonstrated. The process is non-destructive, such that photoluminescence and electroluminescence characteristics of quantum dot films are preserved after crosslinking. We demonstrate that red crosslinked quantum dot light-emitting diodes exhibiting an external quantum efficiency as high as 14.6% can be obtained. Designing high-resolution displays based on colloidal quantum dots remains a challenge. Here, the authors demonstrate a photo-patterning method to develop CdSe-based core-shell quantum dots patterns of red, green and blue colours with diameters ranging from 7 to 20nm and resolution of 1400 pixels per inch.
Publisher
NATURE PUBLISHING GROUP
ISSN
2041-1723
Keyword
EMITTING-DIODESFULL-COLORSEMICONDUCTOR CLUSTERSNANOCRYSTALSEFFICIENTPERFORMANCEELECTROLUMINESCENCELITHOGRAPHYPHOTOLYSISLINKERS

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