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用于量子点发光二极管的ZnO电子传输层的电化学稳定配体

Electrochemically Stable Ligands of ZnO Electron-Transporting Layers for Quantum-Dot Light-Emitting Diodes.

作者信息

Chen Desui, Ma Luying, Chen Yunhua, Zhou Xiaoqi, Xing Shiyu, Deng Yunzhou, Hao Yanlei, Pu Chaodan, Kong Xueqian, Jin Yizheng

机构信息

Zhejiang Key Laboratory for Excited-State Materials, State Key Laboratory of Silicon Materials, Department of Chemistry, Zhejiang University, Hangzhou 310027, People's Republic of China.

Zhejiang Key Laboratory for Excited-State Materials, Department of Chemistry, Zhejiang University, Hangzhou 310027, People's Republic of China.

出版信息

Nano Lett. 2023 Feb 8;23(3):1061-1067. doi: 10.1021/acs.nanolett.2c04670. Epub 2023 Jan 20.

Abstract

Thin films of ZnO nanocrystals are actively pursued as electron-transporting layers (ETLs) in quantum-dot light-emitting diodes (QLEDs). However, the developments of ZnO-based ETLs are highly engineering oriented and the design of ZnO-based ETLs remains empirical. Here, we identified a previously overlooked efficiency-loss channel associated with the ZnO-based ETLs: i.e., interfacial exciton quenching induced by surface-bound ethanol. Accordingly, we developed a general surface-treatment procedure to replace the redox-active surface-bound ethanol with electrochemically inert alkali carboxylates. Characterization results show that the surface treatment procedure does not change other key properties of the ETLs, such as the conductance and work function. Our single-variable experimental design unambiguously demonstrates that improving the electrochemical stabilities of the ZnO ETLs leads to QLEDs with a higher efficiency and longer operational lifetime. Our work provides a crucial guideline to design ZnO-based ETLs for optoelectronic devices.

摘要

氧化锌纳米晶体薄膜作为量子点发光二极管(QLED)中的电子传输层(ETL)受到广泛关注。然而,基于氧化锌的ETL的发展高度依赖工程导向,其设计仍基于经验。在此,我们发现了一个与基于氧化锌的ETL相关的、此前被忽视的效率损失通道:即表面结合的乙醇诱导的界面激子猝灭。因此,我们开发了一种通用的表面处理程序,用电化学惰性的碱金属羧酸盐取代具有氧化还原活性的表面结合乙醇。表征结果表明,该表面处理程序不会改变ETL的其他关键特性,如电导率和功函数。我们的单变量实验设计明确表明,提高氧化锌ETL的电化学稳定性可使QLED具有更高的效率和更长的工作寿命。我们的工作为设计用于光电器件的基于氧化锌的ETL提供了关键指导。

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