†Department of Chemistry and ‡Department of Electrical and Computer Engineering Laboratory for Nanophotonics, Rice University, Houston, Texas 77005, United States.
ACS Nano. 2015 Jul 28;9(7):7072-9. doi: 10.1021/acsnano.5b01634. Epub 2015 Jul 17.
Photoluminescent Au nanoparticles are appealing for biosensing and bioimaging applications because of their non-photobleaching and non-photoblinking emission. The mechanism of one-photon photoluminescence from plasmonic nanostructures is still heavily debated though. Here, we report on the one-photon photoluminescence of strongly coupled 50 nm Au nanosphere dimers, the simplest plasmonic molecule. We observe emission from coupled plasmonic modes as revealed by single-particle photoluminescence spectra in comparison to correlated dark-field scattering spectroscopy. The photoluminescence quantum yield of the dimers is found to be surprisingly similar to the constituent monomers, suggesting that the increased local electric field of the dimer plays a minor role, in contradiction to several proposed mechanisms. Aided by electromagnetic simulations of scattering and absorption spectra, we conclude that our data are instead consistent with a multistep mechanism that involves the emission due to radiative decay of surface plasmons generated from excited electron-hole pairs following interband absorption.
金纳米粒子的单光子光致发光因其无荧光漂白和无荧光闪烁的发射特性而在生物传感和生物成像应用中具有吸引力。尽管如此,等离子体纳米结构的单光子光致发光机制仍存在很大争议。在这里,我们报告了强耦合的 50nm 金纳米球二聚体的单光子光致发光,这是最简单的等离子体分子。我们通过单粒子光致发光光谱观察到耦合等离子体模式的发射,与相关的暗场散射光谱学相比。二聚体的光致发光量子产率与组成单体惊人地相似,这表明偶极子增加的局部电场的作用较小,与几种提出的机制相矛盾。借助于散射和吸收光谱的电磁模拟,我们得出的结论是,我们的数据相反与一个多步骤的机制一致,该机制涉及由于受激电子-空穴对的辐射衰减而产生的表面等离子体的发射,这是在带间吸收之后发生的。