Efficient and bright warm-white electroluminescence from lead-free metal halides

Hong Chen(Nanjing Tech University), Lin Zhu(Nanjing Tech University), Chen Xue(Northwestern Polytechnical University), Pinlei Liu(Nanjing Tech University), Xuerong Du(Nanjing Tech University), Kaichuan Wen(Nanjing Tech University), Hao Zhang(Nanjing Tech University), Lei Xu(Nanjing Tech University), Chensheng Xiang(State Key Laboratory of Silicon Materials), Chen Lin(State Key Laboratory of Silicon Materials), Minchao Qin(Chinese University of Hong Kong), Jing Zhang(Chinese Academy of Sciences), Tao Jiang(Nanjing Tech University), Chang Yi(Nanjing Tech University), Lu Cheng(Nanjing Tech University), Chenglong Zhang(Nanjing Tech University), Pinghui Yang(Nanjing Tech University), Meiling Niu(Nanjing Tech University), Wenjie Xu(Nanjing Tech University), Jingya Lai(Nanjing Tech University), Yu Cao(Nanjing Tech University), Jin Chang(Nanjing Tech University), He Tian(State Key Laboratory of Silicon Materials), Yizheng Jin(State Key Laboratory of Silicon Materials), Xinhui Lu(Chinese University of Hong Kong), Lang Jiang(Chinese Academy of Sciences), Nana Wang(Nanjing Tech University), Wei Huang(Nanjing Tech University), Jianpu Wang(Nanjing Tech University)
Nature Communications
March 3, 2021
Cited by 173Open Access
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Abstract

Abstract Solution-processed metal-halide perovskites are emerging as one of the most promising materials for displays, lighting and energy generation. Currently, the best-performing perovskite optoelectronic devices are based on lead halides and the lead toxicity severely restricts their practical applications. Moreover, efficient white electroluminescence from broadband-emission metal halides remains a challenge. Here we demonstrate efficient and bright lead-free LEDs based on cesium copper halides enabled by introducing an organic additive (Tween, polyethylene glycol sorbitan monooleate) into the precursor solutions. We find the additive can reduce the trap states, enhancing the photoluminescence quantum efficiency of the metal halide films, and increase the surface potential, facilitating the hole injection and transport in the LEDs. Consequently, we achieve warm-white LEDs reaching an external quantum efficiency of 3.1% and a luminance of 1570 cd m −2 at a low voltage of 5.4 V, showing great promise of lead-free metal halides for solution-processed white LED applications.


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