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Balanced Charge Carrier Transport Mediated by Quantum Dot Film Post-organization for Light-Emitting Diode Applications

发光二极管 量子点 材料科学 光电子学 载流子 二极管 电子迁移率 电子 色散(光学) 超晶格 载流子产生和复合 半导体 物理 光学 量子力学
作者
Yuljae Cho,Jongchul Lim,Meng Li,Sangyeon Pak,Zhao‐Kui Wang,Yingguo Yang,Antonio Abate,Zhe Li,Henry J. Snaith,Bo Hou,SeungNam Cha
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:13 (22): 26170-26179 被引量:16
标识
DOI:10.1021/acsami.1c04821
摘要

In light-emitting diodes (LEDs), balanced electron and hole transport is of particular importance to achieve high rates of radiative recombination. Most quantum dot (QD)-based LEDs, however, employ infinitesimal core-shell QDs which inherently have different electron and hole mobilities. As QDs are the core building blocks of QD-LEDs, the inherent mobility difference in the core-shell QDs causes significantly unbalanced charge carrier transport, resulting in detrimental effects on performances of QD-LEDs. Herein, we introduce a post-chemical treatment to reconstruct the QD films through the solvent-mediated self-organization process. The treatment using various poly-alkyl alcohol groups enables QD ensembles to transform from disordered solid dispersion into an ordered superlattice and effectively modulate electron and hole mobilities, which leads to the balanced charge carrier transport. In particular, ethanol-treated QD films exhibit enhanced charge carrier lifetime and reduced hysteresis due to the balanced charge carrier transport, which is attributed to the preferential-facet-oriented QD post-organization. As a result, 63, 78, and 54% enhancements in the external quantum efficiency were observed in red, green, and blue QD-LEDs, respectively. These results are of fundamental importance to understand both solvent-mediated QD film reconstruction and the effect of balanced electron and hole transport in QD-LEDs.
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