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用微镜调节单量子点发射。

Tuning Single Quantum Dot Emission with a Micromirror.

机构信息

ARC Centre of Excellence in Exciton Science, School of Chemistry, University of Melbourne , Parkville, Victoria 3010, Australia.

School of Chemical Sciences, RMIT University , Melbourne, Victoria 3001, Australia.

出版信息

Nano Lett. 2018 Feb 14;18(2):1010-1017. doi: 10.1021/acs.nanolett.7b04482. Epub 2018 Jan 11.

Abstract

The photoluminescence of single quantum dots fluctuates between bright (on) and dark (off) states, also termed fluorescence intermittency or blinking. This blinking limits the performance of quantum dot-based devices such as light-emitting diodes and solar cells. However, the origins of the blinking remain unresolved. Here, we use a movable gold micromirror to determine both the quantum yield of the bright state and the orientation of the excited state dipole of single quantum dots. We observe that the quantum yield of the bright state is close to unity for these single QDs. Furthermore, we also study the effect of a micromirror on blinking, and then evaluate excitation efficiency, biexciton quantum yield, and detection efficiency. The mirror does not modify the off-time statistics, but it does change the density of optical states available to the quantum dot and hence the on times. The duration of the on times can be lengthened due to an increase in the radiative recombination rate.

摘要

单量子点的光致发光在亮(开)态和暗(关)态之间波动,也称为荧光不连续性或闪烁。这种闪烁限制了基于量子点的设备(如发光二极管和太阳能电池)的性能。然而,闪烁的起源仍未解决。在这里,我们使用可移动的金微镜来确定单个量子点的亮态量子产率和激发态偶极子的方向。我们观察到这些单个量子点的亮态量子产率接近 1。此外,我们还研究了微镜对闪烁的影响,然后评估了激发效率、双激子量子产率和检测效率。镜子不会改变关闭时间的统计数据,但它确实改变了量子点可用的光态密度,从而改变了开启时间。由于辐射复合速率的增加,开启时间的持续时间可以延长。

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