Lingbin Ye, Yun Gao, Yifeng Feng, Xiaofang Zhu, Zichao Ma, Dingshuo Zhang, Yifan He, Haiping He, Zhizhen Ye, Xingliang Dai
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引用次数: 0
摘要
混合卤化物钙钛矿发光二极管(PeLEDs)面临着场相关相分离的关键挑战。与配体锚定的离散胶体CsPbX3纳米晶体有望抑制相分离,但当作为发射膜集成到led中时,离子迁移如何进行仍然是一个谜。具体来说,离子在单个纳米晶体内或沿着电场跨纳米晶体迁移对ped性能的影响需要解耦。本文采用低温辅助转移打印的方法,构建了含有清晰CsPbBr3-CsPbI3纳米晶膜界面的模型PeLED,用于跟踪钙钛矿纳米晶膜之间沿电场方向的离子迁移。综合研究表明,卤素离子穿过纳米晶膜界面导致严重的相分离和器件稳定性差,而不是横向层内扩散。单层CsPbX3纳米晶体薄膜防止了层间离子迁移引起的场相关相分离,显著提高了电致发光的稳定性,包括光谱和寿命。优化后的结构在初始亮度为100 cd m−2的混合卤化物CsPb(Ix/Br1-x)3纯红色pled中实现了26.9%的高外量子效率和61.2 h的显著改进半衰期,比使用多层纳米晶体的控制器件长300多倍。
Suppressing Interlayer Ion Migration in CsPbX3 Nanocrystal Films for Realizing Efficient and Stable Electroluminescence
Mixed-halide perovskite light-emitting diodes (PeLEDs) face the critical challenge of field-dependent phase separation. Discrete colloidal CsPbX3 nanocrystals anchored with ligands are promising to suppress phase separation, yet it remains a mystery how ion migration proceeds when integrated into LEDs as emissive films. Specifically, the influence of ion migration inside a single nanocrystal or across the nanocrystals along the electric field on the performance of PeLEDs needs to be decoupled. Here, a low-temperature-assisted transfer-printing method is developed to construct a model PeLED containing a clear CsPbBr3-CsPbI3 nanocrystal film interface for tracing the ion migration between perovskite nanocrystal films along the direction of electric fields. The comprehensive study demonstrates that halogen ions crossing the nanocrystal film interface lead to severe phase separation and poor device stability, rather than the horizontal intra-layer diffusion. The monolayer CsPbX3 nanocrystal film prevents the field-dependent phase separation caused by interlayer ion migration, significantly improving electroluminescent stability, including spectrum and lifetime. The optimized structure achieves a high external quantum efficiency of 26.9% and a remarkably improved operational half-lifetime of 61.2 h at an initial luminance of 100 cd m−2 in pure-red PeLEDs based on mixed-halide CsPb(Ix/Br1-x)3, more than 300 times longer than the control device using multilayer nanocrystals.
期刊介绍:
Advanced Materials, one of the world's most prestigious journals and the foundation of the Advanced portfolio, is the home of choice for best-in-class materials science for more than 30 years. Following this fast-growing and interdisciplinary field, we are considering and publishing the most important discoveries on any and all materials from materials scientists, chemists, physicists, engineers as well as health and life scientists and bringing you the latest results and trends in modern materials-related research every week.