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Rod-like plasmonic nanoparticles as optical building blocks: how differences in particle shape and structural geometry influence optical signal.

机译:棒状等离激元纳米粒子作为光学构建基块:粒子形状和结构几何形状的差异如何影响光信号。

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摘要

Gold nanoparticles, particularly those with an anisotropic shape, have become a popular optical probe for experiments involving work on the nanoscale. However, to carry out such delicate and intricate experiments, it is first necessary to understand the detailed behavior of individual nanoparticles. In this series of experiments, optical and electron microscopy were utilized for the characterization of individual nanoparticles and small assemblies of nanoparticles.;In the first experiment, gold nanorods were investigated. Single, isolated nanorods exhibit two maxima of localized surface plasmon resonance (LSPR), which are associated with the two nanorod axes. Upon the physical rotation of a nanorod at one of its LSPR wavelengths under polarized illumination, the optical behavior varies in a sinusoidal fashion. A dimer of nanorods exhibits optical behavior quite similar to a nanorod, except the LSPR maxima are shifted and broader. Under differential interference contrast (DIC) microscopy, a pair of nanorods separated by a distance below the diffraction limit can be distinguished from a single nanorod due to its optical behavior upon rotation. Dark field microscopy is unable to distinguish the two geometries.;For the second set of experiments, the optical behavior of single gold nanorods at non-plasmonic wavelengths was investigated. The same nanorod was rotated with respect to a polarized light source under DIC, dark field, and polarized light microscopy. DIC microscopy was found to produce diffraction pattern peaks at non-plasmonic wavelengths, which could be altered by adjusting the setting of the polarizer.;In the third set of experiments, the optical behavior of a single gold dumbbell and several simple dumbbell geometries were investigated with microscopy and simulations. The single dumbbell displayed behavior quite similar to that of a nanorod, but dumbbells exhibit a shift in both LSPR wavebands. Moreover, the shape of dumbbell particles allows them to interlock with one another quite easily. The dimers that form as a result display optical behavior that differs from what has been previously reported about nanorod dimers. Simulated surface charge density patterns reveal that hybridization of LSPR modes occurs readily along the lobes of individual dumbbells in some situations. A pentamer of dumbbells also displays hybridization of modes, and "hot spots" are observed at junctions between pairings of dumbbells.;In the final set of experiments, the assembly behavior of nanoparticles in solution was observed in real time. In general, large assemblies of nanoparticles display backbone-like rigidity, but an interesting variety of movements is permitted within the larger structures.
机译:金纳米粒子,特别是具有各向异性形状的金纳米粒子,已成为涉及纳米级实验的流行光学探针。但是,要进行如此精致而复杂的实验,首先必须了解单个纳米颗粒的详细行为。在这一系列实验中,利用光学和电子显微镜表征了单个纳米粒子和纳米粒子的小组装体。在第一个实验中,研究了金纳米棒。单个孤立的纳米棒表现出两个最大的局部表面等离振子共振(LSPR),与两个纳米棒轴相关。当纳米棒在偏振照明下以其LSPR波长之一进行物理旋转时,光学行为会以正弦形式变化。纳米棒的二聚体表现出与纳米棒非常相似的光学行为,不同之处在于LSPR最大值发生了偏移和变宽。在微分干涉对比(DIC)显微镜下,由于其旋转时的光学行为,可以将一对距离小于衍射极限的纳米棒与单个纳米棒区分开。暗场显微镜无法区分这两种几何形状。在第二组实验中,研究了单个金纳米棒在非等离子体波长下的光学行为。在DIC,暗场和偏振光显微镜下,相对于偏振光源旋转同一纳米棒。发现DIC显微镜会在非等离激元波长处产生衍射图谱峰,可以通过调整起偏器的设置来改变该图谱峰。在第三组实验中,研究了单个金哑铃和几种简单哑铃几何形状的光学行为显微镜和模拟。单个哑铃的行为与纳米棒的行为非常相似,但是哑铃在两个LSPR波段均表现出偏移。此外,哑铃颗粒的形状使它们可以很容易地彼此互锁。结果形成的二聚体显示的光学行为不同于先前关于纳米棒二聚体的报道。模拟的表面电荷密度模式表明,在某些情况下,LSPR模式的杂交很容易沿单个哑铃状波瓣发生。哑铃的五角体也显示出模式的杂交,并且在成对的哑铃之间的交界处观察到“热点”。在最后一组实验中,实时观察到纳米粒子在溶液中的组装行为。通常,纳米粒子的大型组件显示出类似骨架的刚度,但是在大型结构中允许进行多种有趣的运动。

著录项

  • 作者

    Stender, Anthony Shawn.;

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Nanoscience.;Chemistry Analytical.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 153 p.
  • 总页数 153
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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