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通过单量子点光谱学评估核/壳界面对俄歇复合的影响。

Effect of the core/shell interface on auger recombination evaluated by single-quantum-dot spectroscopy.

机构信息

Chemistry Division, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, United States.

出版信息

Nano Lett. 2014 Feb 12;14(2):396-402. doi: 10.1021/nl403289w. Epub 2014 Jan 15.

Abstract

Previous single-particle spectroscopic studies of colloidal quantum dots have indicated a significant spread in biexciton lifetimes across an ensemble of nominally identical nanocrystals. It has been speculated that in addition to dot-to-dot variation in physical dimensions, this spread is contributed to by variations in the structure of the quantum dot interface, which controls the shape of the confinement potential. Here, we directly evaluate the effect of the composition of the core-shell interface on single- and multiexciton dynamics via side-by-side measurements of individual core-shell CdSe/CdS nanocrystals with a sharp versus smooth (graded) interface. To realize the latter type of structures we incorporate a CdSexS1-x alloy layer of controlled composition and thickness between the CdSe core and the CdS shell. We observe that while having essentially no effect on single-exciton decay, the interfacial alloy layer leads to a systematic increase in biexciton lifetimes, which correlates with the increase in the biexciton emission efficiency, as inferred from two-photon correlation measurements. These observations provide direct experimental evidence that in addition to the size of the quantum dot, its interfacial properties also significantly affect the rate of Auger recombination, which governs biexciton decay. These findings help rationalize previous observations of a significant heterogeneity in the biexciton lifetimes across similarly sized quantum dots and should facilitate the development of "Auger-recombination-free" colloidal nanostructures for a range of applications from lasers and light-emitting diodes to photodetectors and solar cells.

摘要

先前的胶体量子点的单粒子光谱研究表明,在一组名义上相同的纳米晶体中,双激子寿命存在显著的分散。有人推测,除了点到点的物理尺寸变化外,这种分散还归因于量子点界面结构的变化,这种结构控制着限制势的形状。在这里,我们通过对具有尖锐和光滑(渐变)界面的单个核壳 CdSe/CdS 纳米晶体进行并排测量,直接评估了核壳界面组成对单激子和多激子动力学的影响。为了实现后一种类型的结构,我们在 CdSe 核和 CdS 壳之间掺入了具有受控组成和厚度的 CdSexS1-x 合金层。我们观察到,虽然界面合金层对单激子衰减基本没有影响,但它会导致双激子寿命的系统增加,这与双激子发射效率的增加相关,这可以从双光子相关测量中推断出来。这些观察结果提供了直接的实验证据,表明除了量子点的尺寸外,其界面特性也会显著影响决定双激子衰减的俄歇复合速率。这些发现有助于解释以前在类似尺寸的量子点中观察到的双激子寿命显著不均匀的现象,并应促进“无俄歇复合”胶体纳米结构的发展,这些结构可用于从激光和发光二极管到光电探测器和太阳能电池等各种应用。

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