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单胶体CdSe/CdS核壳量子点光致发光间歇性中的充电和放电通道

Charging and Discharging Channels in Photoluminescence Intermittency of Single Colloidal CdSe/CdS Core/Shell Quantum Dot.

作者信息

Meng Renyang, Qin Haiyan, Niu Yuan, Fang Wei, Yang Sen, Lin Xing, Cao Hujia, Ma Junliang, Lin Wanzhen, Tong Limin, Peng Xiaogang

机构信息

Center for Chemistry of Novel & High-Performance Materials, Department of Chemistry, Zhejiang University , Hangzhou 310027, China.

State Key Laboratory of Modern Optical Instrumentation, College of Optical Science and Engineering, Zhejiang University , Hangzhou 310027, China.

出版信息

J Phys Chem Lett. 2016 Dec 15;7(24):5176-5182. doi: 10.1021/acs.jpclett.6b02448. Epub 2016 Dec 2.

Abstract

Understanding photoluminescence (PL) intermittency of single quantum dots (QDs) (intensity blinking by randomly switching between distinguishable brightness states under continuous excitation) has been a long-standing fundamental challenge and potential roadblock for their applications. Here we introduce a new analysis method for single-molecule spectroscopy that treats the blinking as photochemical/chemical processes (switching between neutral/bright and charged/dim states). It uncovers the channels for charging (bright to dim) and discharging (dim to bright) involved in PL blinking of single CdSe/CdS core/shell QDs. Both charging and discharging of the single CdSe/CdS core/shell QD possess a photochemical channel (∼10 to 10 events/photon) that linearly depends on excitation in both single- and multi-exciton regime. These two linear channels coupled to a spontaneous discharging channel (∼2 events/s) to dictate the QDs from nonblinking to gradually blinking under increasing excitation. For high-quality CdSe/CdS core/shell QDs, Auger ionization of multiexciton for both charging and discharging is negligible.

摘要

理解单量子点(QD)的光致发光(PL)间歇性(即在连续激发下,强度通过在可区分的亮度状态之间随机切换而闪烁)一直是一个长期存在的基本挑战,也是其应用的潜在障碍。在此,我们介绍一种单分子光谱分析新方法,该方法将闪烁视为光化学/化学过程(在中性/明亮和带电/暗淡状态之间切换)。它揭示了单个CdSe/CdS核壳量子点PL闪烁过程中涉及的充电(明亮到暗淡)和放电(暗淡到明亮)通道。单个CdSe/CdS核壳量子点的充电和放电都具有一个光化学通道(约10至10次事件/光子),该通道在单激子和多激子状态下均线性依赖于激发。这两个线性通道与一个自发放电通道(约2次事件/秒)耦合,以决定量子点在激发增加时从非闪烁逐渐变为闪烁。对于高质量的CdSe/CdS核壳量子点,多激子的俄歇电离在充电和放电过程中均可忽略不计。

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