Charge injection engineering at organic/inorganic heterointerfaces for high-efficiency and fast-response perovskite light-emitting diodes

被引:0
作者
Zhenchao Li
Ziming Chen
Zhangsheng Shi
Guangruixing Zou
Linghao Chu
Xian-Kai Chen
Chujun Zhang
Shu Kong So
Hin-Lap Yip
机构
[1] South China University of Technology,State Key Laboratory of Luminescent Materials and Devices, Institute of Polymer Optoelectronic Materials and Devices, School of Materials Science and Engineering
[2] State Key Laboratory of Advanced Materials and Electronic Components,Department of Chemistry and Centre for Processible Electronics
[3] Guangdong Fenghua Advanced Technology Holding Co. Ltd.,Department of Chemistry
[4] Imperial College London,Department of Materials Science and Engineering
[5] City University of Hong Kong, Hong Kong Institute for Advanced Study
[6] City University of Hong Kong,Institute of Functional Nano & Soft Materials (FUNSOM)
[7] City University of Hong Kong,Jiangsu Key Laboratory of Advanced Negative Carbon Technologies
[8] Soochow University,Department of Physics and Institute of Advanced Materials
[9] Soochow University,School of Energy and Environment
[10] Hong Kong Baptist University,Hong Kong Institute for Clean Energy
[11] City University of Hong Kong,undefined
[12] City University of Hong Kong,undefined
来源
Nature Communications | / 14卷
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摘要
The development of advanced perovskite emitters has considerably improved the performance of perovskite light-emitting diodes (LEDs). However, the further development of perovskite LEDs requires ideal device electrical properties, which strongly depend on its interfaces. In perovskite LEDs with conventional p-i-n structures, hole injection is generally less efficient than electron injection, causing charge imbalance. Furthermore, the popular hole injection structure of NiOx/poly(9-vinylcarbazole) suffers from several issues, such as weak interfacial adhesion, high interfacial trap density and mismatched energy levels. In this work, we insert a self-assembled monolayer of [2-(9H-carbazol-9-yl)ethyl]phosphonic acid between the NiOx and poly(9-vinylcarbazole) layers to overcome these challenges at the organic/inorganic heterointerfaces by establishing a robust interface, passivating interfacial trap states and aligning the energy levels. We successfully demonstrate blue (emission at 493 nm) and green (emission at 515 nm) devices with external quantum efficiencies of 14.5% and 26.0%, respectively. More importantly, the self-assembled monolayer also gives rise to devices with much faster response speeds by reducing interfacial capacitance and resistance. Our results pave the way for developing more efficient and brighter perovskite LEDs with quick response, widening their potential application scope.
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