Efficient light-emitting diodes from mixed-dimensional perovskites on a fluoride interface

钙钛矿(结构) 光电子学 材料科学 电致发光 光致发光 氟化锂 二极管 发光二极管 量子效率 卤化物 图层(电子) 无机化学 化学 纳米技术 结晶学
作者
Baodan Zhao,Yaxiao Lian,Lin‐Song Cui,Giorgio Divitini,Gunnar Kusch,Edoardo Ruggeri,Florian Auras,Weiwei Li,Dexin Yang,Bonan Zhu,Rachel A. Oliver,Judith L. MacManus‐Driscoll,Samuel D. Stranks,Dawei Di,Richard H. Friend
出处
期刊:Nature electronics [Nature Portfolio]
卷期号:3 (11): 704-710 被引量:217
标识
DOI:10.1038/s41928-020-00487-4
摘要

Light-emitting diodes based on halide perovskites have recently reached external quantum efficiencies of over 20%. However, the performance of visible perovskite light-emitting diodes has been hindered by non-radiative recombination losses and limited options for charge-transport materials that are compatible with perovskite deposition. Here, we report efficient, green electroluminescence from mixed-dimensional perovskites deposited on a thin (~1 nm) lithium fluoride layer on an organic semiconductor hole-transport layer. The highly polar dielectric interface acts as an effective template for forming high-quality bromide perovskites on otherwise incompatible hydrophobic charge-transport layers. The control of crystallinity and dimensionality of the perovskite layer is achieved by using tetraphenylphosphonium chloride as an additive, leading to external photoluminescence quantum efficiencies of around 65%. With this approach, we obtain light-emitting diodes with external quantum efficiencies of up to 19.1% at high brightness (>1,500 cd m−2). Green perovskite light-emitting diodes with external quantum efficiencies of up to 19.1% at high brightness can be created by depositing an ultrathin layer of strongly polar lithium fluoride between the perovskite and hole-transport layers.
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