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The intrinsic luminescence of individual plasmonic nanostructures in aqueous suspension by photon time-of-flight spectroscopy

机译:个人的内在发光电浆由光子纳米结构在水中悬浮体飞行时间谱

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摘要

We have studied the intrinsic one-photon excited luminescence of freely diffusing gold nanoparticles of different shapes in aqueous suspension. Gold nanospheres were used as a reference, since their luminescence has been investigated previously and their light absorption and scattering properties are described analytically by Mie theory. We then studied gold nanobipyramids and nanostars that have recently gained interest as building blocks for new plasmonic nanosensors. The aim of our study is to determine whether the luminescence of gold nanoparticles of complex shape (bipyramids and nanostars) is a plasmon-assisted process, in line with the conclusions of recent spectroscopic studies on spheres and nanorods. Our study has been performed on particles in suspension in order to avoid any artefact from the heterogeneous environment created when particles are deposited on a substrate. We employ a recently developed photon time-of-flight method in combination with correlation spectroscopy of the light scattered by the particles to probe the luminescent properties of individual particles based on a particle-by-particle spectral analysis. Furthermore, we have performed resonant light scattering spectroscopic measurements on the same samples. Our work demonstrates the power of our time-of flight method for uncovering the plasmonic signatures of individual bipyramids and nanostars during their brief passage in the focal volume of a confocal set-up. These spectral features of individual particles remain hidden in macroscopic measurements. We find that the intrinsic photoluminescence emission of gold bipyramids and gold nanostars is mediated by their localized surface plasmons.
机译:我们已经研究了内在一个光子兴奋发光的黄金自由扩散不同形状的纳米颗粒在水悬架。参考,因为他们的发光调查之前和他们的光吸收和散射特性描述分析了米氏理论。研究了黄金nanobipyramids nanostars最近获得了利益作为构建块吗新的电浆纳米传感器。研究确定的发光复杂形状的金纳米粒子(双锥体和nanostars)是一个plasmon-assisted的过程,与最近的光谱的结论研究领域和纳米棒。在悬挂在粒子上执行为了避免任何的人工制品异构环境时创建的粒子沉积在衬底。最近开发的光子飞行时间的方法结合相关光谱的粒子的光散射探针单个粒子的发光特性基于particle-by-particle光谱分析。光散射光谱测量相同的样本。我们的飞行时间方法发现电浆个人双锥体和签名nanostars在焦段共焦结构的体积。单个粒子的特性仍然隐藏在宏观测量。内在的光致发光的金子双锥体和黄金nanostars是由局部表面等离子体激元。

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