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Suppressing defect states in CsPbBr3 perovskite via magnesium substitution for efficient all-inorganic light-emitting diodesf

机译:抑制CSPBBR3 Perovskite的缺陷状态通过镁取代用于高效的全无机发光DioDESF

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摘要

Lead-halide perovskites are promising materials for photovoltaic,light emitting and laser applications due to their excellent optoelectronic properties.Of note,light-emitting diodes(LEDs)based on these materials have attained efficiencies exceeding 20% with emission in either red or green colour.However,the toxicity of lead ions would raise potential risks to users and the environment.Herein,it is desirable to replace lead with sustainable and nontoxic elements.In this work,we show that the photoluminescence quantum yield(PLQY)and electroluminescence(EL)efficiencies in CsPbBr3 perovskite can be dramatically improved upon partial replacement of lead ions with magnesium ones.The perovskite films with magnesium incorporation display improved film morphology and better crystallinity.Simulation results indicate a higher defect formation energy upon incorporating magnesium.As a result,an enhanced PLQY and a longer photoluminescence lifetime are obtained in the magnesium incorporated halide perovskite film.Time-resolved spectroscopy and transient absorption are used to conduct a detailed analysis of the recombination pathways,and a reduction in non-radiative loss is observed,in conjunction with a significant decrease in the drop of carrier density in the first few picoseconds-from 60% to 10%-that is often associated with trap filling.In addition,ultraviolet photoelectron spectroscopy measurement indicates that the hole injection barrier is dramatically reduced with magnesium.Under optimized conditions,perovskite LEDs based on CsPb_(0.9)Mg_(0.1)Br3 achieved a high luminance of 25 450 cd m~(-2)and a current efficiency of 13.13 cd A~(-1),which is enhanced by approximately 100-fold compared to the device without substitution.Our results provide new approaches for more sustainable and efficient perovskite LEDs in the crucial green emission region.
机译:卤化锂钙钛矿是用于光伏,发光和激光应用的有希望的材料,由于它们的优异的光电性能。注意,基于这些材料的发光二极管(LED)达到了超过20%的效率,红润或绿色的发射然而,铅离子的毒性会对用户和环境提高潜在的风险。肠杆菌,希望用可持续和无毒的元素替换引线。在这项工作中,我们表明光致发光量子产量(PLQY)和电致发光(EL CSPBBR3钙钛矿中的效率可以大大改善用镁含有镁掺入铅离子。钙钛矿薄膜显示出改善的薄膜形态和更好的结晶度。仿生结果表明掺入镁的缺陷形成能量。在镁掺入的卤化物P中获得增强的PLQY和更长的光致发光寿命Erovskite薄膜。时间分辨的光谱和瞬态吸收用于进行重组途径的详细分析,并且观察到非辐射损耗的降低,同时在前几种皮秒中的载体密度下降显着降低 - 从60%到10%-THAT通常与陷阱填充有关。此外,紫外线光电子体光谱测量结果表明,孔注入屏障随着镁的显着减少。优化条件下,基于CSPB_(0.9)MG_(0.1 )BR3实现了25 450cd m〜(-2)的高亮度,并且电流效率为13.13cd a〜(-1),与器件相比,与没有替代的设备相比增强了大约100倍。我们的结果提供了新方法对于关键绿色排放地区的更可持续和高效的Perovskite LED。

著录项

  • 来源
    《Nanoscale Horizons》 |2019年第4期|共9页
  • 作者单位

    Jiangsu Key Laboratory for Carbon-Based Functional Materials &

    Devices Institute of Functional Nano &

    Soft Materials(FUNSOM) Joint International Research Laboratory of Carbon-Based Functional Materials and Devices Soochow University 199 Ren'ai Road Suzhou;

    Jiangsu Key Laboratory for Carbon-Based Functional Materials &

    Devices Institute of Functional Nano &

    Soft Materials(FUNSOM) Joint International Research Laboratory of Carbon-Based Functional Materials and Devices Soochow University 199 Ren'ai Road Suzhou;

    Cavendish Laboratory Department of Physics University of Cambridge JJ Thomson Avenue Cambridge CB3 OHE UK;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子物理学、原子物理学;工程材料学;
  • 关键词

  • 入库时间 2022-08-20 04:26:19

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