Modification of multiphoton emission properties of single quantum dot due to the long-range coupling with plasmon nanoparticles in thin-film hybrid material

V. Krivenkov, P. Samokhvalov, A. Sánchez-Iglesias, M. Grzelczak, I. Nabiev, Y. Rakovich
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Abstract

Semiconductor quantum dots (QDs) are known for their unique photophysical properties and, in particular, their ability to multiphoton emission caused by recombination of biexcitons. However, the luminescence quantum yield of biexciton states is relatively low due to the fast Auger non-radiative process. Plasmonic nanoparticles can significantly accelerate the radiative rate of QDs. In this study we demonstrate the distance-controlled enhancement of the biexciton emission of single CdSe/ZnS/CdS/ZnS QDs due to their coupling with gold nanorods. We explain this enhancement as the distancedependent trade-off between the energy transfer and the Purcell effect. Our findings constitute a reliable approach to managing the efficiency of multiphoton emission over a wide span of distances.
薄膜杂化材料中等离子体纳米粒子对单量子点多光子发射特性的远程耦合影响
半导体量子点(QDs)以其独特的光物理特性,特别是由双激子重组引起的多光子发射能力而闻名。然而,由于快速俄歇非辐射过程,双激子态的发光量子产率相对较低。等离子体纳米粒子能显著加速量子点的辐射速率。在这项研究中,我们证明了由于CdSe/ZnS/CdS/ZnS量子点与金纳米棒的耦合,其双激子发射的距离控制增强。我们将这种增强解释为能量转移和珀塞尔效应之间的距离依赖权衡。我们的发现构成了一个可靠的方法来管理多光子发射的效率在大跨度的距离。
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