钙钛矿(结构)
光电子学
二极管
发光二极管
量子效率
材料科学
纳米网
有机发光二极管
图层(电子)
纳米技术
化学
石墨烯
结晶学
作者
Shuxin Wang,Zhiqiu Yu,Jiajun Qin,Guoyi Chen,Yongjie Liu,S.W. Fan,Chao Ma,Fang Yao,Hongsen Cui,Shun Zhou,Kailian Dong,Qianqian Lin,Chen Tao,Feng Gao,Weijun Ke,Guojia Fang
标识
DOI:10.1016/j.scib.2024.05.028
摘要
Perovskite light-emitting diodes (PeLEDs) exhibit remarkable potential in the field of displays and solid-state lighting. However, blue PeLEDs, a key element for practical applications, still lag behind their green and red counterparts, due to a combination of strong nonradiative recombination losses and unoptimized device structures. In this report, we propose a buried interface modification strategy to address these challenges by focusing on the bottom-hole transport layer (HTL) of the PeLEDs. On one hand, a multifunctional molecule, aminoacetic acid hydrochloride (AACl), is introduced to modify the HTL/perovskite interface to regulate the perovskite crystallization. Experimental investigations and theoretical calculations demonstrate that AACl can effectively reduce the nonradiative recombination losses in bulk perovskites by suppressing the growth of low-n perovskite phases and also the losses at the bottom interface by passivating interfacial defects. On the other hand, a self-assembly nanomesh structure is ingeniously developed within the HTLs. This nanomesh structure is meticulously crafted through the blending of poly–(9,9–dioctyl–fluorene–co–N–(4–butyl phenyl) diphenylamine) and poly (n–vinyl carbazole), significantly enhancing the light outcoupling efficiency in PeLEDs. As a result, our blue PeLEDs achieve remarkable external quantum efficiencies, 20.4% at 487 nm and 12.5% at 470 nm, which are among the highest reported values. Our results offer valuable insights and effective methods for achieving high-performance blue PeLEDs.
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