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Mechanisms of fluorescence blinking in semiconductor nanocrystal quantum dots

机译:半导体纳米晶体量子点中荧光闪烁的机理

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摘要

The light-induced spectral diffusion and fluorescence intermittency (blinking) of semiconductor nanocrystal quantum dots are investigated theoretically using a diffusion-controlled electron-transfer (DCET) model, where a light-induced one-dimensional diffusion process in energy space is considered. Unlike the conventional electron-transfer reactions with simple exponential kinetics, the model naturally leads to a power-law statistics for the intermittency. We formulate a possible explanation for the spectral broadening and its proportionality to the light energy density, the –3/2 power law for the blinking statistics of the fluorescence intermittency, the breakdown of the power-law behavior with a bending tail for the "light" periods, a lack of bending tail for the "dark" periods (but would eventually appear at later times), and the dependence of the bending tail on light intensity and temperature. This DCET model predicts a critical time tc (a function of the electronic coupling strength and other quantities), such that for times shorter than tc the exponent for the power law is –1/2 instead of –3/2. Quantitative analyses are made of the experimental data on spectral diffusion and on the asymmetric blinking statistics for the "on" and "off" events. Causes for deviation of the exponent from the ideal value of –3/2 are also discussed. Several fundamental properties are determined from the present experimental data, the diffusion correlation time, the Stokes shift, and a combination of other molecular-based quantities. Specific experiments are suggested to test the model further, extract other molecular properties, and elucidate more details of the light-induced charge-transfer dynamics in quantum dots.
机译:理论上,使用扩散控制电子转移(DCET)模型研究了半导体纳米晶体量子点的光诱导光谱扩散和荧光间歇性(闪烁),其中考虑了光在能量空间中的一维扩散过程。与具有简单指数动力学的常规电子转移反应不同,该模型自然会导致间歇性的幂律统计。我们为光谱加宽及其与光能密度的比例,对于荧光间歇性的闪烁统计的–3/2幂定律,对于“光”具有弯曲尾巴的幂律行为的破坏,制定了可能的解释。期间,“黑暗”时期缺乏弯曲的尾巴(但最终会在以后出现),并且弯曲的尾巴与光强度和温度有关。该DCET模型预测了临界时间tc(电子耦合强度和其他数量的函数),因此对于比tc短的时间,幂律的指数为–1/2而不是–3/2。定量分析了有关光谱扩散和“开”和“关”事件的不对称闪烁统计数据的实验数据。还讨论了指数偏离–3/2理想值的原因。从当前的实验数据,扩散相关时间,斯托克斯位移以及其他基于分子的量的组合确定了几个基本特性。建议进行特定的实验以进一步测试模型,提取其他分子特性,并阐明量子点中光诱导的电荷转移动力学的更多细节。

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    Tang Jau; Marcus R. A.;

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  • 年度 2005
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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