论文标题

单个Au纳米颗粒中两光子光致发光的超级干扰条纹:中间状态的关键作用

Super interference fringes of two-photon photoluminescence in individual Au nanoparticles: the critical role of the intermediate state

论文作者

Li, Yao, Yang, Yonggang, Qin, Chengbing, Song, Yunrui, Han, Shuangping, Zhang, Guofeng, Chen, Ruiyun, Hu, Jianyong, Xiao, Liantuan, Jia, Suotang

论文摘要

光和金属纳米颗粒之间的相互作用可以研究纳米长度和超短时尺度上的微观现象,从而受益于光场的强限制和增强。然而,这些纳米颗粒的超快动力学主要是通过独立在picseconds上的多光子光致发光或独立在飞秒上的光发射来研究的。在这里,我们介绍了单个Au纳米型吡咯(AUNP)的两光子光致发光(TPPL)测量值,以通过两脉冲激发在全球时间尺度上揭示其超快动力学,范围从次级秒至picseconds的全球时间尺度。在数十亿的飞秒上已经证明了两种魔力光致发光的增强,即超级干扰条纹。当插入延迟从数十人的飞秒变为数十秒时,互动的测量结果发现了从1到2的非线性转换。我们证明,实际中间状态在观察到的现象中起着至关重要的作用,并得到了具有三个特征态模型的数值模拟,并在具有不同直径的AU纳米球上进行了进一步的实验。使用数值模拟估计了关键参数,包括脱离时间,辐射率和不同状态之间的耦合。我们的结果提供了对中间状态在高贵金属纳米颗粒超快动力学中的作用的见解。超级干扰条纹中的巨型光致发光在成像,传感和纳米光子学方面具有潜在的实际应用。

The interaction between light and metal nanoparticles enables investigations of microscopic phenomena on nanometer length and ultrashort time scales, benefiting from strong confinement and enhancement of the optical field. However, the ultrafast dynamics of these nanoparticles are primarily investigated by multiphoton photoluminescence on picoseconds or photoemission on femtoseconds independently. Here, we presented two-photon photoluminescence (TPPL) measurements on individual Au nanobipyramids (AuNP) to reveal their ultrafast dynamics by two-pulse excitation on a global time scale ranging from sub-femtosecond to tens of picoseconds. Two-orders-of-magnitude photoluminescence enhancement, namely super interference fringes, has been demonstrated on tens of femtoseconds. Power-dependent measurements uncovered the transform of the nonlinearity from 1 to 2 when the interpulse delay varied from tens of femtoseconds to tens of picoseconds. We proved that the real intermediate state plays a critical role in the observed phenomena, supported by numerical simulations with a three eigenstates model and further experiments on Au nanospheres with different diameters. The crucial parameters, including the dephasing time, the radiative rate, and the coupling between different states, have been estimated using numerical simulations. Our results provide insight into the role of intermediate states in the ultrafast dynamics of noble metal nanoparticles. The giant photoluminescence in super interference fringes enables potential practical applications in imaging, sensing, and nanophotonics.

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