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首页> 外文期刊>Nano letters >The Dependence of the Plasmon Field Induced Nonradiative Electronic Relaxation Mechanisms on the Gold Shell Thickness in Vertically Aligned CdTe-Au Core-Shell Nanorods
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The Dependence of the Plasmon Field Induced Nonradiative Electronic Relaxation Mechanisms on the Gold Shell Thickness in Vertically Aligned CdTe-Au Core-Shell Nanorods

机译:等离子场诱导的非辐射电子弛豫机制对垂直排列的CdTe-Au核壳纳米棒中金壳厚度的依赖性

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摘要

The dependence of the plasmon field enhancement of the nonradiative relaxation rate of the band gap electrons in vertically aligned CdTe-Au core-shell nanorods on the plasmonic gold nanoshell thickness is examined. Increasing the thickness of the gold nanoshell from 15 to 26 nm is found to change the decay curve from being nonexponential and anisotropic to one that is fully exponential and isotropic (i.e., independent of the nanorod orientation with respect to the exciting light polarization direction). Analysis of the kinetics of the possible electronic relaxation enhancement mechanisms is carried out, and DDA simulated properties of the induced plasmonic field of the thin and thick gold nanoshells are determined. On the basis of the conclusions of these treatments and the experimental results, it is concluded that by increasing the nanoshell thickness the relaxation processes evolve from multiple enhancement mechanisms, dominated by highly anisotropic Auger processes, to mechanism(s) involving first-order excited electron ejection process(es). The former is shown to give rise to nonexponential anisotropic decays in the dipolar plasmon field of the thin nanoshell, while the latter exhibits an exponential isotropic decay in the unpolarized plasmonic field of the thick nanoshell.
机译:研究了垂直取向的CdTe-Au核壳纳米棒中带隙电子的非辐射弛豫速率的等离激元场增强对等离激元金纳米壳厚度的依赖性。已发现将金纳米壳的厚度从15 nm增加到26 nm,可以将衰减曲线从非指数和各向异性改变为完全指数和各向同性的衰减曲线(即与纳米棒相对于激发光偏振方向的取向无关)。进行了可能的电子弛豫增强机制的动力学分析,并确定了DDA模拟的薄和厚金纳米壳诱导等离子体场的特性。根据这些处理的结论和实验结果,可以得出结论,通过增加纳米壳厚度,弛豫过程从以高度各向异性的俄歇过程为主的多种增强机制演变为涉及一阶激发电子的机制。弹出过程。已显示前者在薄纳米壳的偶极等离子体场中引起非指数各向异性衰减,而后者在厚纳米壳的非极化等离子体场中表现出指数各向同性衰减。

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