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A Hierarchical Self-Assembly-Induced Solid-State White-Light Emission from a Solution-Processed Single Polymeropen access

Authors
Ravindran, EzhakudiyanPoonguzhali, BabuAli, Peer Mydeen Mohammed VajithJeevarathinam, Ananthakrishnan SoundaramMurugan, PachaiyappanRyu, Seung YoonJung, Jae Woong
Issue Date
Mar-2026
Publisher
American Chemical Society
Citation
Macromolecules, v.59, no.5, pp 2835 - 2845
Pages
11
Indexed
SCIE
SCOPUS
Journal Title
Macromolecules
Volume
59
Number
5
Start Page
2835
End Page
2845
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/63988
DOI
10.1021/acs.macromol.5c02557
ISSN
0024-9297
1520-5835
Abstract
Researchers worldwide have invested significant effort in developing organic light-emitting diodes (OLEDs) for future display and lighting applications. However, achieving efficient and optimized white OLEDs by integrating diverse organic emitters across the visible spectrum is challenging. This study demonstrates the efficient operation of nondoped white OLEDs triggered by molecular tuning of copolymers (PTNAA 0.1 to PTNAA 50), thereby enriching the aggregation-induced emission (AIE) characteristics in a solution-processed single polymer. Remarkably, the synthesized copolymer, PTNAA 0.1, generates a bright and stable dual-band white light with a solid-state photoluminescence quantum yield (PLQY) of 87.7%, displaying a unique "nanoring-like" hierarchical self-assembly potentially driven by J-aggregate formation. Furthermore, PTNAA-based copolymers effectively diminish charge carrier trapping owing to their ambipolar charge transport characteristics, enabling efficient electroluminescence (EL). A solution-processed single-polymer-based OLED device fabricated with PTNAA 0.1 exhibited bright white light luminescence with an external quantum efficiency (EQE) of 6.75% with CIE coordinates of (0.33, 0.32), and maximum luminescence, current, and power efficiencies of 10553 cd m-2, 9.68 cd A-1, and 4.34 lm W-1, respectively. Moreover, theoretical (DFT and TD-DFT) studies confirm the competent energy transfer from fluorene to the PTNAA-gens. Our results corroborate materials design for solution-processed WOLEDs and concrete advances in solid-state lighting and display technologies.
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