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Tuning exciton diffusion, mobility and emission line width in CdSe nanoplatelets via lateral size

机译:调优激子扩散、迁移和排放线宽在CdSe nanoplatelets通过横向尺寸

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We investigate the lateral size tunability of the exciton diffusion coefficient and mobility in colloidal quantum wells by means of line width analysis and theoretical modeling. We show that the exciton diffusion coefficient and mobility in laterally finite 2D systems like CdSe nanoplatelets can be tuned via the lateral size and aspect ratio. The coupling to acoustic and optical phonons can be altered via the lateral size and aspect ratio of the platelets. Subsequently the exciton diffusion and mobility become tunable since these phonon scattering processes determine and limit the mobility. At 4 K the exciton mobility increases from similar to 4 x 10(3) cm(2) V-1 s(-1) to more than 1.4 x 10(4) cm(2) V-1 s(-1) for large platelets, while there are weaker changes with size and the mobility is around 8 x 10(1) cm(2) V-1 s(-1) for large platelets at room temperature. In turn at 4 K the exciton diffusion coefficient increases with the lateral size from similar to 1.3 cm(2) s(-1) to similar to 5 cm(2) s(-1), while it is around half the value for large platelets at room temperature. Our experimental results are in good agreement with theoretical modeling, showing a lateral size and aspect ratio dependence. The findings open up the possibility for materials with tunable exciton mobility, diffusion or emission line width, but quasi constant transition energy. High exciton mobility is desirable e.g. for solar cells and allows efficient excitation harvesting and extraction.
机译:我们调查的横向尺寸的可调性激子扩散系数和机动性胶体量子井的线宽分析和理论建模。激子扩散系数和机动性像CdSe横向有限2 d系统nanoplatelets可以通过外侧调整大小和长宽比。通过横向光学声子可以更改血小板的大小和长宽比。随后激子扩散和机动性成为可调因为这些声子散射流程确定和限制流动性。从类似于K激子迁移率增加4 x 10(3)厘米(1)(2)与它们年代超过1.4 x10(4)厘米(1)(2)与它们年代大型血小板有较弱的大小和变化流动性约8×10(1)厘米(2)与它们年代(1)大血小板在室温下。K激子扩散系数增加与横向大小类似于1.3厘米(2)年代(1)类似于5厘米(2)(1),虽然大约一半的值大血小板在房间温度。与理论建模、显示横向大小和长宽比的依赖。结果打开材料的可能性用可调谐激子迁移、扩散或发射谱线宽度,但准常数转换能量。理想如太阳能电池和允许有效的激发收集和提取。

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