首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Ultrafast Transient Absorption Study of the Nature of Interaction between Oppositely Charged Photoexcited CdTe Quantum Dots and Cresyl Violet
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Ultrafast Transient Absorption Study of the Nature of Interaction between Oppositely Charged Photoexcited CdTe Quantum Dots and Cresyl Violet

机译:超快瞬态吸收研究对相反充电的光透明的CDTE量子点和酸紫杉的相互作用性质

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摘要

Understanding the dynamics of exciton quenching of the quantum dots (QDs) is of great importance considering the fact that the applications of these substances are based mainly on luminescence. In this work, we have studied exciton quenching of the CdTe QDs by cresyl violet (CV) employing steady-state and time-resolved absorption and emission techniques. Efficient luminescence quenching of these QDs is observed in the presence of CV. Interestingly, despite an excellent overlap of the absorption and emission spectra of CV and QDs, respectively, the emission quenching of the QDs is not accompanied by an increase in the steady-state fluorescence intensity of CV or a rise in its fluorescence time profile that can be considered as evidence for the Forster resonance energy transfer process. The time-resolved fluorescence measurements suggest that the quenching is partially due to static interaction of the two species. The transient absorption studies in the 0-100 Ps time scale show that recovery of the 1S exciton bleach of the QDs is much faster in the presence of CV when compared with that in its absence, indicating that ultrafast photoinduced electron transfer from the conduction band of the QDs to CV is responsible for the emission quenching of the former. The recombination of the charge-separated species is found to occur in similar to 2 ps.
机译:了解量子点(QDS)的激子淬火的动态非常重要,考虑到这些物质的应用主要基于发光。在这项工作中,我们研究了通过使用稳态和时间分辨吸收和排放技术的冠紫(CV)的CDTE QDS的激子猝灭。在CV存在下观察到这些QD的有效发光猝灭。有趣的是,尽管CV和QD的吸收和发射光谱的极好重叠,但QD的发射猝灭不伴随CV的稳态荧光强度的增加或其荧光时间曲线的增加被视为福斯特共振能源转移过程的证据。时间分辨荧光测量表明,淬火部分是由于两种物种的静态相互作用。 0-100 PS时间尺度的瞬态吸收研究表明,与其不存在的情况相比,CV的QDS的QDS的恢复在CV存在下得多得多得多,表明超自速光导电从传导带CV的QDS负责前者的排放淬火。发现电荷分离物质的重组发生在类似于2 ps中。

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