三碘化物
卤化物
铯
钙钛矿(结构)
二极管
材料科学
谱线
发光二极管
光化学
光电子学
无机化学
化学
物理化学
结晶学
电解质
物理
电极
色素敏化染料
天文
作者
Mingming Shi,Ji Jiang,Zhengchang Xia,Zema Chu,Wei Zhang,Jingzhen Li,Zhigang Yin,Jingbi You,Xingwang Zhang
标识
DOI:10.1002/lpor.202501148
摘要
Abstract Mixed‐halide quasi‐2D pure‐red perovskite light‐emitting diodes (PeLEDs) have shown significant progress in recent years. However, the unsatisfied emission efficiency and spectral stability caused by unfavorable distribution of low‐dimensional phase, non‐radiative recombination losses, and halide phase segregation remain the primary unsolved challenges for pure‐red quasi‐2D PeLEDs. Here, it is shown that the addition of CsI 3 into both perovskite and interface layer precursors can significantly enhance efficiency and spectral stability of pure‐red quasi‐2D PeLEDs. The introduced CsI 3 can improve perovskite film quality by rearranging low‐dimensional phase, decreasing defect state density and reducing crystallite size. In addition, the addition of CsI 3 in the interface layer leads to better band alignment between hole transport layer and the perovskite layer. Consequently, efficient and stable quasi‐2D pure‐red PeLEDs with an EQE max of 20.05% at 635 nm are achieved, which exhibit negligible wavelength shift under different operating voltages and indicate excellent spectral and operational stability. This work not only addresses the critical challenges in iodine‐bromine mixed pure‐red PeLEDs, but also provides a promising strategy for their further development in optoelectronic applications.
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