Insights from single particle spectroscopy of plasmonic nanostructures

S. Link, Behnaz Ostovar
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Abstract

A surface plasmon in a metal nanoparticle is the coherent oscillation of the conduction band electrons leading to both absorption and scattering as well as strong local electromagnetic fields. The plasmon is tunable through nanoparticel size and shape, as well as via nanoparticle interactions on different length scales that support near- and far-field coupling. Chemical synthesis and assembly of nanostructures are able to tailor plasmonic properties that are, however, typically broadened by ensemble averaging. Single particle spectroscopy together with correlated imaging is capable of removing heterogeneity in size, shape, and assembly geometry and furthermore allows one to separate absorption and scattering contributions. This talk describes how heterogeneity in crystal structure in a distribution of aluminum nanoparticles determines the damping of coherent lattice oscillations that are launched by ultrafast laser excitation.
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等离子体纳米结构的单粒子光谱分析
金属纳米粒子中的表面等离子体是导带电子的相干振荡,导致吸收和散射以及强的局部电磁场。等离子体可以通过纳米粒子的大小和形状以及不同长度尺度的纳米粒子相互作用来调节,从而支持近场和远场耦合。纳米结构的化学合成和组装能够调整等离子体性质,然而,通常通过系综平均来扩大等离子体性质。单粒子光谱与相关成像一起能够消除尺寸,形状和组装几何形状的异质性,并且允许人们分离吸收和散射贡献。本讲座描述了铝纳米颗粒分布中晶体结构的非均质性如何决定由超快激光激发引发的相干晶格振荡的阻尼。
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Super-resolution microscopy: an adventure on a new dimension Insights from single particle spectroscopy of plasmonic nanostructures
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