Probing and controlling fluorescence blinking of single semiconductor nanoparticles.

Hsien-Chen Ko, Chi-Tsu Yuan, Jau Tang
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引用次数: 11

Abstract

In this review we present an overview of the experimental and theoretical development on fluorescence intermittency (blinking) and the roles of electron transfer in semiconductor crystalline nanoparticles. Blinking is a very interesting phenomenon commonly observed in single molecule/particle experiments. Under continuous laser illumination, the fluorescence time trace of these single nanoparticles exhibit random light and dark periods. Since its first observation in the mid-1990s, this intriguing phenomenon has attracted wide attention among researchers from many disciplines. We will first present the historical background of the discovery and the observation of unusual inverse power-law dependence for the waiting time distributions of light and dark periods. Then, we will describe our theoretical modeling efforts to elucidate the causes for the power-law behavior, to probe the roles of electron transfer in blinking, and eventually to control blinking and to achieve complete suppression of the blinking, which is an annoying feature in many applications of quantum dots as light sources and fluorescence labels for biomedical imaging.

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探测和控制单个半导体纳米颗粒的荧光闪烁。
本文综述了半导体晶体纳米颗粒中荧光间歇性(闪烁)和电子转移的实验和理论进展。闪烁是单分子/粒子实验中常见的一种非常有趣的现象。在连续激光照射下,这些单纳米粒子的荧光时间轨迹呈现出随机的亮暗周期。自20世纪90年代中期首次观察到这一现象以来,这一有趣的现象引起了许多学科研究人员的广泛关注。我们将首先介绍这一发现的历史背景,并观察到光期和暗期等待时间分布不寻常的逆幂律依赖性。然后,我们将描述我们的理论建模工作,以阐明幂律行为的原因,探讨电子转移在眨眼中的作用,并最终控制眨眼并实现完全抑制眨眼,这是量子点作为生物医学成像光源和荧光标记的许多应用中的一个恼人的特征。
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