首页> 外文会议>ASME international mechanical engineering congress and exposition >EXPERIMENTAL STUDY OF ENHANCEMENT AND QUENCHING OF PLASMON-CONTROLLED FLUORESCENCE USING QUANTUM DOT - PLASMONIC NANOPARTICLE MIXTURES IN AQUEOUS MEDIUM
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EXPERIMENTAL STUDY OF ENHANCEMENT AND QUENCHING OF PLASMON-CONTROLLED FLUORESCENCE USING QUANTUM DOT - PLASMONIC NANOPARTICLE MIXTURES IN AQUEOUS MEDIUM

机译:量子点-等离子纳米微粒混合物在水介质中增强和猝灭等离子体控制荧光的实验研究。

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This article reports the enhancement and quenching of quantum dot (QD) emission for different concentrations of plasmonic nanoparticles (PNPs) by utilizing the Brownian motion-induced dynamic near-field interactions in aqueous solution. We measured the fluorescence spectrum of two types of QD-PNP mixtures. The first mixture was QDs (525 nm for emission wavelength) and gold nanoparticles dispersed in distilled water, where the emission wavelength of the QDs matches the localized surface plasmon (LSP) excitation wavelength of the gold nanoparticles. The second mixture was QDs (655 nm for emission wavelength) and silver nanoparticles dispersed in distilled water, where LSPs excited at the wavelength of 392 nm affect the excitation of the QDs. For both experiments, the QD emission spectra were monitored while changing the concentration of the PNPs from 10~8 to 10~(11) /mL for a fixed concentration of QDs at 1 × 10~(13) /mL. For low PNP concentrations, the QD emission was enhanced for 30 nm gold nanoparticles and 80 nm silver nanoparticles; however, for high PNP concentrations, the QD emission was always quenched. This research reveals the dependence of the QD fluorescence on the concentration of PNPs. The obtained results will be beneficial in further understanding plasmonic interactions between QDs and nanoparticles and the manipulation of QD emission, switching from enhancement to quenching or vice versa, with the alteration of nanoparticle concentration.
机译:本文报道了通过利用布朗运动引起的水溶液中动态近场相互作用,不同浓度的等离激元纳米粒子(PNPs)量子点(QD)发射的增强和猝灭。我们测量了两种类型的QD-PNP混合物的荧光光谱。第一种混合物是QD(发射波长为525 nm)和金纳米颗粒分散在蒸馏水中,其中QD的发射波长与金纳米颗粒的局部表面等离子体激元(LSP)激发波长匹配。第二种混合物是QD(发射波长655 nm)和分散在蒸馏水中的银纳米颗粒,其中以392 nm波长激发的LSP影响QD的激发。对于这两个实验,在将QNP的固定浓度为1×10〜(13)/ mL的同时,将PNP的浓度从10〜8更改为10〜(11)/ mL时,监测了QD发射光谱。对于低PNP浓度,对于30 nm的金纳米颗粒和80 nm的银纳米颗粒,其QD发射得到增强;但是,对于高PNP浓度,QD发射始终被淬灭。这项研究揭示了QD荧光对PNP浓度的依赖性。获得的结果将有助于进一步理解量子点与纳米粒子之间的等离子相互作用以及量子点发射的控制,随着纳米粒子浓度的变化,从增强转变为淬灭,反之亦然。

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