Jang Kyung Yeon, Hwang Shin Young, Woo Seung-Je, Yoon Eojin, Park Chan-Yul, Kim Seo Young, Kim Dong-Hyeok, Kim Hyeree, Park Jinwoo, Sargent Edward H, Lee Tae-Woo
Department of Materials Science and Engineering, Seoul National University, 1 Gwanak-ro, Gwanak-gu, Seoul, 08826, Republic of Korea.
Department of Electrical and Computer Engineering, University of Toronto, 35 St George Street, Toronto, ON, M5S 1A4, Canada.
Adv Mater. 2024 Sep;36(39):e2404856. doi: 10.1002/adma.202404856. Epub 2024 Aug 7.
Metal halide perovskite light-emitting diodes (PeLEDs) have exceptional color purity but designs that emit deep-blue color with high efficiency have not been fully achieved and become more difficult in the thin film of confined perovskite colloidal quantum dots (PeQDs) due to particle interaction. Here it is demonstrated that electronic coupling and energy transfer in PeQDs induce redshift in the emission by PeQD film, and consequently hinder deep-blue emission. To achieve deep-blue emission by avoiding electronic coupling and energy transfer, a QD-in-organic solid solution is introduced to physically separate the QDs in the film. This physical separation of QDs reduces the interaction between them yielding a blueshift of ≈7 nm in the emission spectrum. Moreover, using a hole-transporting organic molecule with a deep-lying highest occupied molecular orbital (≈6.0 eV) as the organic matrix, the formation of exciplex emission is suppressed. As a result, an unprecedently high maximum external quantum efficiency of 6.2% at 462 nm from QD-in-organic solid solution film in PeLEDs is achieved, which satisfies the deep-blue color coordinates of CIEy < 0.06. This work suggests an important material strategy to deepen blue emission without reducing the particle size to <≈4 nm.
金属卤化物钙钛矿发光二极管(PeLEDs)具有出色的色纯度,但高效发射深蓝色光的设计尚未完全实现,并且由于颗粒相互作用,在受限的钙钛矿胶体量子点(PeQDs)薄膜中实现起来变得更加困难。本文证明,PeQDs中的电子耦合和能量转移会导致PeQD薄膜发射出现红移,从而阻碍深蓝色发射。为了通过避免电子耦合和能量转移来实现深蓝色发射,引入了一种量子点-无机固溶体,以物理方式分离薄膜中的量子点。量子点的这种物理分离减少了它们之间的相互作用,使发射光谱产生了约7纳米的蓝移。此外,使用具有深埋最高占据分子轨道(约6.0电子伏特)的空穴传输有机分子作为有机基质,抑制了激基复合物发射的形成。结果,在PeLEDs中,量子点-无机固溶体薄膜在462纳米处实现了前所未有的6.2%的最高外部量子效率,满足了CIEy < 0.06的深蓝色色坐标。这项工作提出了一种重要的材料策略,即在不将粒径减小到约4纳米以下的情况下加深蓝色发射。