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Sizing Up Excitons in Core-Shell Quantum Dots via Shell-Dependent Photoluminescence Blinking

机译:通过壳依赖性光致发光闪烁向上施加核心 - 壳量子点中的激子

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摘要

Semiconductor nanocrystals or quantum dots (QDs) are now widely used across solar cell, display, and bioimaging technologies. While advances in multishell, alloyed, and multinary core shell QD structures have led to improved light-harvesting and photoluminescence (PL) properties of these nanoinaterials, the effects that QDcapping have on the exciton dynamics that govern PL instabilities such as blinking in single-QDs is not well understood. We report experimental measurements of shell size -dependent absorption and PL intermittency in' CdSeCdS QDs that are consistent, with a modified charge tunnelling, self-trapping (CTST) description of the exciton dynamics in these nanocrystals. By introducing an effective, core-exciton size, which accounts for delocalization of charge carriers across the QD core and shell, we show that the CTST models both the shell-depth-dependent red-shift of the QD band gap and changes in the on/off-state switching statistics, that we observe in single-QD PL intensity trajectories. Further analysis of CdSe-ZnS QDs, shows how differences in shell structure and integrity affect the QD band gap and PL blinking within the CTST framework.
机译:半导体纳米晶体或量子点(QDS)现在广泛地跨太阳能电池,显示器和生物影像元素。虽然Mulishell,合金化和多核壳QD结构的进步导致了这些纳米材料的光收集和光致发光(PL)性质,但是QDCapping对激发器动态的效果控制了PL稳定性,例如在单QDS中闪烁闪烁不太了解。我们报告了在这些纳米晶体中的改进的电荷隧道,自捕获(CTST)描述这些纳米晶体中的改进的电荷隧道,自捕集(CTST)描述的实验测量。通过引入有效的核心激子大小,该大小占QD核心和外壳的电荷载波的临近化,我们表明CTST模型QD带隙的外壳深度依赖性的红移和开启的变化/脱态切换统计数据,我们观察到单QD PL强度轨迹。进一步分析CDSE-ZNS QD,显示了壳结构和完整性的差异如何影响CTST框架内的QD带隙和PL闪烁。

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