首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Insights into the local structure of dopants, doping efficiency, and luminescence properties of lanthanide-doped CsPbCl3 perovskite nanocrystals
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Insights into the local structure of dopants, doping efficiency, and luminescence properties of lanthanide-doped CsPbCl3 perovskite nanocrystals

机译:介绍掺杂剂,掺杂效率和镧系掺杂CSPBCL3钙钛矿纳米晶体的发光性能的局部结构

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Doping has been established as a powerful approach for endowing lead halide perovskite nanocrystals (NCs) with novel properties. However, our fundamental understanding of the local structure of dopants, doping efficiency and luminescence properties of these NCs is still very sparse. Here, we provide the first experimental evidence regarding the local structure of rare earth ions in CsPbCl3 NCs, based on the analysis of extended X-ray absorption fine structure spectroscopy. Our result suggests that Yb3+ occupies the Pb2+ crystallographic sites in CsPbCl3 NCs. We further demonstrate a strategy to examine the determinant of the doping efficiency in lanthanide-doped lead halide perovskite NCs, which enables us to uncover the important role of structural defects in affecting the doping efficiency. A broad range of experimental characterization techniques including steady-state and time-resolved luminescence spectra, X-ray absorption spectra, and positron annihilation lifetime spectra, coupled with first-principles calculations, help us identify that the doping efficiency is associated with structural defects in NCs and that the formation of a higher-concentration of defects favors incorporation of a higher-concentration of dopants into the lattice. Importantly, we demonstrate that the concept of defect-assisted doping is not limited to the model system of Yb3+-doped CsPbCl3 NCs, but can be used as a guideline to rationally tune the doping efficiency of lanthanide-doped halide perovskite NCs. We also show that lanthanide-doped CsPbCl3 NCs demonstrate anomalous decay of the band-edge emission, which we propose is due to the existence of shallow trapping states near the conduction band. Our results greatly deepen the understanding of the structural and photophysical properties of lanthanide-doped lead halide perovskite NCs, and highlight the possibility to use the chemistry of defects to tailor the doping efficiency of halide perovskite NCs.
机译:已经建立了掺杂作为具有新特性的卤化卤化卤化铅钙钛矿纳米晶体(NCS)的强大方法。然而,我们对掺杂剂的局部结构的根本理解,这些NCS的掺杂效率和发光性质仍然非常稀疏。在这里,我们基于延长X射线吸收细结构光谱分析的分析,提供了关于CSPBCL3 NCS中稀土离子局部结构的第一个实验证据。我们的结果表明YB3 +占CSPBCL3 NCS中的PB2 +晶体位点。我们进一步证明了一种策略,用于检查含镧掺杂卤化铅卤化物钙钛矿NCS中掺杂效率的决定因素,这使我们能够揭示结构缺陷在影响掺杂效率方面的重要作用。广泛的实验表征技术,包括稳态和时间分辨的发光光谱,X射线吸收光谱和正电子湮灭寿命谱,与第一原理计算有助于我们识别掺杂效率与结构缺陷相关NCS和更高浓度的缺陷的形成有利于将更高浓度的掺杂剂掺入晶格中。重要的是,我们证明了缺陷辅助掺杂的概念不限于YB3 +掺杂的CSPBCL3 NCS的模型系统,但可以用作理性调整氯丹ide掺杂卤化物钙钛矿NCS掺杂效率的指导。我们还表明,掺杂镧系元素的CSPBCL3 NCS展示了带缘发射的异常衰减,我们提出的是由于导通带附近的浅捕集状态存在。我们的结果极大地深化了对镧掺杂铅卤化物钙钛矿NCS的结构和光物理性质的理解,并突出了使用缺陷化学来定制卤化物钙钛矿NCS的掺杂效率的可能性。

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