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Detailed Observation of Multiphoton Emission Enhancement from a Single Colloidal Quantum Dot Using a Silver-Coated AFM Tip

机译:使用镀银的AFM尖端从单个胶体量子点增强多光子发射的详细观察

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摘要

The enhancement of multiphoton emission from a single colloidal nanocrystal quantum dot (NQD) interacting with a plasmonic nanostructure was investigated using a silver-coated atomic force microscopy tip (AgTip) as the plasmonic nanostructure. Using the AgTip, which exhibited a well-defined localized surface plasmon (LSP) resonance band, we controlled the spectral overlap and the distance between the single NQD and the AgTip. The emission behavior of the single NQD when approaching the AgTip at the nanometer scale was measured using off-resonance (405 nm) and resonance (465 tun) excitation of the LSP. We directly observed the conversion of the single-photon emission from a single NQD to multiphoton emission with reduction of the emission lifetime at both excitation wavelengths as the NQD-AgTip distance decreased, whereas a decrease and increase in the emission intensity were observed at 405 and 465 nm excitation, respectively. By combining theoretical analysis and the numerical simulation of the AgTip, we deduced that the enhancement of the multiphoton emission was caused by the quenching of the single-exciton state due to the energy transfer from the NQD to the AgTip and that the emission intensity was increased by enhancement of the excitation rate due to the electric field of the LSP on the AgTip. These results provide evidence that the photon statistics and the photon flux from the single NQD can be manipulated by the plasmonic nanostructure through control of the spectral overlap and the distance.
机译:使用镀银的原子力显微镜尖端(AgTip)作为等离子体纳米结构,研究了与等离子体纳米结构相互作用的单个胶体纳米晶体量子点(NQD)产生的多光子发射的增强。使用展现出明确定义的局部表面等离子体激元(LSP)共振带的AgTip,我们控制了光谱重叠以及单个NQD与AgTip之间的距离。使用LSP的非共振(405 nm)和共振(465 tun)激发测量了单个NQD在纳米级接近AgTip时的发射行为。我们直接观察到,随着NQD-AgTip距离的减小,两个激发波长的发射寿命都缩短,单光子发射从单个NQD转换为多光子发射,而在405和405 nm处观察到发射强度的下降和增加。分别为465 nm激发。通过理论分析和AgTip的数值模拟相结合,我们推论出多光子发射的增强是由于从NQD到AgTip的能量转移引起的单激子态的猝灭,并且发射强度增加了。通过提高AgTip上LSP电场引起的激发速率。这些结果提供了证据,即通过控制光谱重叠和距离,等离子体纳米结构可以控制单个NQD的光子统计量和光子通量。

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