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通过三氟乙酸盐钝化和混合空穴传输设计提高蓝光钙钛矿量子点发光二极管的外量子效率超过23%

Boosting External Quantum Efficiency of Blue Perovskite QLEDs Exceeding 23% by Trifluoroacetate Passivation and Mixed Hole Transportation Design.

作者信息

Nong Yingyi, Yao Jisong, Li Jiaqi, Xu Leimeng, Yang Zhi, Li Chuang, Song Jizhong

机构信息

Key Laboratory of Materials Physics of Ministry of Education, School of Physics, Zhengzhou University, Daxue Road 75, Zhengzhou, 450052, China.

出版信息

Adv Mater. 2024 Jul;36(27):e2402325. doi: 10.1002/adma.202402325. Epub 2024 Apr 24.

Abstract

Perovskite quantum dot-based light-emitting diodes (QLEDs) have been considered a promising display technology due to their wide color gamut for authentic color expression. Currently, the external quantum efficiency (EQE) for state-of-the-art blue perovskite QLEDs is about 15%, which still lags behind its green and red counterparts (>25%) and blue film-based LEDs. Here, blue perovskite QLEDs that achieve an EQE of 23.5% at 490 nm is presented, to the best knowledge, which is the highest value reported among blue perovskite-based LED fields. This impressive efficiency is achieved through a combination of quantum dot (QD) passivation and optimal device design. First, blue mixed halide perovskite CsPbCl Br QDs passivated by trifluoroacetate exhibit excellent exciton recombination behavior with a photoluminescence quantum yield of 84% due to reducing uncoordinated Pb surface defects. Furthermore, the device is designed by introducing a mixed hole-transport layer (M-HTL) to increase hole injection and transportation capacity and improve carrier balance. It is further found that M-HTL can decrease carrier leakage and increase radiative recombination in the device, evidenced by the visual electroluminescence spectrum at 2.0 V. The work breaks through the EQE gap of 20% for blue perovskite-based QLEDs and significantly promotes their commercialization process.

摘要

基于钙钛矿量子点的发光二极管(QLED)因其具有宽广的色域以实现真实色彩表达,而被视为一种很有前景的显示技术。目前,最先进的蓝色钙钛矿QLED的外量子效率(EQE)约为15%,仍落后于其绿色和红色同类产品(>25%)以及基于薄膜的蓝色LED。在此,据我们所知,展示了在490nm处实现23.5%外量子效率的蓝色钙钛矿QLED,这是基于蓝色钙钛矿的LED领域中报道的最高值。这种令人印象深刻的效率是通过量子点(QD)钝化和优化器件设计相结合实现的。首先,由三氟乙酸盐钝化的蓝色混合卤化物钙钛矿CsPbClBr QD由于减少了未配位的Pb表面缺陷,表现出优异的激子复合行为,光致发光量子产率为84%。此外,通过引入混合空穴传输层(M-HTL)来设计器件,以提高空穴注入和传输能力并改善载流子平衡。进一步发现,M-HTL可以减少器件中的载流子泄漏并增加辐射复合,2.0V时的可视化电致发光光谱证明了这一点。这项工作突破了基于蓝色钙钛矿的QLED 20%的外量子效率差距,并显著推动了它们的商业化进程。

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