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Direct Optical Patterning of Quantum Dot Light‐Emitting Diodes via In Situ Ligand Exchange

Authors :
Dmitri V. Talapin
Jia-Ahn Pan
Wooje Cho
Haoqi Wu
Igor Coropceanu
Xinzheng Lan
John S. Anderson
Himchan Cho
Ethan A. Hill
Yuanyuan Wang
Source :
Advanced Materials. 32:2003805
Publication Year :
2020
Publisher :
Wiley, 2020.

Abstract

Precise patterning of quantum dot (QD) layers is an important prerequisite for fabricating QD light-emitting diode (QLED) displays and other optoelectronic devices. However, conventional patterning methods cannot simultaneously meet the stringent requirements of resolution, throughput, and uniformity of the pattern profile while maintaining a high photoluminescence quantum yield (PLQY) of the patterned QD layers. Here, a specially designed nanocrystal ink is introduced, "photopatternable emissive nanocrystals" (PENs), which satisfies these requirements. Photoacid generators in the PEN inks allow photoresist-free, high-resolution optical patterning of QDs through photochemical reactions and in situ ligand exchange in QD films. Various fluorescence and electroluminescence patterns with a feature size down to ≈1.5 µm are demonstrated using red, green, and blue PEN inks. The patterned QD films maintain ≈75% of original PLQY and the electroluminescence characteristics of the patterned QLEDs are comparable to thopse of non-patterned control devices. The patterning mechanism is elucidated by in-depth investigation of the photochemical transformations of the photoacid generators and changes in the optical properties of the QDs at each patterning step. This advanced patterning method provides a new way for additive manufacturing of integrated optoelectronic devices using colloidal QDs.

Details

ISSN :
15214095 and 09359648
Volume :
32
Database :
OpenAIRE
Journal :
Advanced Materials
Accession number :
edsair.doi.dedup.....0425eeb18bbd4a5d270494b670aec8fe