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Anisotropic nanomaterials: Synthesis, optical and magnetic properties, and applications.

机译:各向异性纳米材料:合成,光学和磁性以及应用。

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摘要

As nanoscience and nanotechnology mature, anisotropic metal nanostructures are emerging in a variety of contexts as valuable class of nanostructures due to their distinctive attributes. With unique properties ranging from optical to magnetic and beyond, these structures are useful in many new applications.;Chapter two discusses the nanodisk code: a linear array of metal disk pairs that serve as surface-enhanced Raman scattering substrates. These multiplexing structures employ a binary encoding scheme, perform better than previous nanowires designs (in the context of SERS) and are useful for both convert encoding and tagging of substrates (based both on spatial disk position and spectroscopic response) as well as biomolecule detection (e.g. DNA).;Chapter three describes the development of improved, silver-based nanodisk code structures. Work was undertaken to generate structures with high yield and reproducibility and to reoptimize the geometry of each disk pair for maximum Raman enhancement. The improved silver structures exhibit greater enhancement than Au structures (leading to lower DNA detection limits), convey additional flexibility, and enable trinary encoding schemes where far more unique structures can be created.;Chapter four considers the effect of roughness on the plasmonic properties of nanorod structures and introduces a novel method to smooth the end-surfaces of nanorods structures. The smoothing technique is based upon a two-step process relying upon diffusion control during nanowires growth and selective oxidation after each step of synthesis is complete. Empirical and theoretical work show that smoothed nanostructures have superior and controllable optical properties.;Chapter five concerns silica-encapsulated gold nanoprisms. This encapsulation allows these highly sensitive prisms to remain stable and protected in solution, enabling their use as class-leading sensors. Theoretical study complements the empirical work, exploring the effect of encapsulation on the SPR of these structures.;Chapter six focuses on the magnetic properties of Au-Ni heterostructures. In addition to demonstration of nanoconfinement effects based upon the anisotropy of the nanorods/nanodisk structure, the magnetic coupling of rod-disk heterostructures is examined. Subsequent investigations suggest that the magnetic behavior of disks can be influenced by nearby rod segments, leading to the creation of a three-state spin system that may prove useful in device applications.
机译:随着纳米科学和纳米技术的成熟,各向异性金属纳米结构由于其独特的属性而在各种情况下作为有价值的一类纳米结构出现。这些结构具有从光学到磁性等方面的独特属性,可用于许多新应用中。第二章讨论了纳米磁盘代码:金属磁盘对的线性阵列,用作表面增强的拉曼散射基板。这些多路复用结构采用二进制编码方案,性能优于以前的纳米线设计(在SERS的背景下),可用于转换编码和标记基质(基于空间盘位置和光谱响应)以及生物分子检测(第三章描述了改进的基于银的纳米磁盘代码结构的发展。进行了工作以产生具有高产量和可再现性的结构,并重新优化每个磁盘对的几何形状以最大程度地提高拉曼强度。改进的银结构比Au结构表现出更大的增强(导致更低的DNA检测限),传达了更多的灵活性,并启用了三元编码方案,可以创建更多独特的结构。;第四章考虑了粗糙度对铁电浆等离子体性质的影响。纳米棒结构,并介绍了一种使纳米棒结构端面光滑的新方法。平滑技术基于两步过程,该过程依赖于纳米线生长和完成每个合成步骤后的选择性氧化过程中的扩散控制。实验和理论研究表明,光滑的纳米结构具有优异的可控光学性能。第五章是二氧化硅包裹的金纳米棱镜。这种封装可以使这些高度敏感的棱镜在溶液中保持稳定并受到保护,从而使其可用作同类领先的传感器。理论研究是对经验工作的补充,探讨了封装对这些结构的SPR的影响。第六章重点研究了Au-Ni异质结构的磁性。除了演示基于纳米棒/纳米盘结构各向异性的纳米约束作用外,还检查了棒-盘异质结构的磁耦合。随后的研究表明,磁盘的磁性能会受到附近杆段的影响,从而导致产生三态自旋系统,这可能会在设备应用中证明是有用的。

著录项

  • 作者

    Banholzer, Matthew John.;

  • 作者单位

    Northwestern University.;

  • 授予单位 Northwestern University.;
  • 学科 Chemistry Inorganic.;Chemistry Physical.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 137 p.
  • 总页数 137
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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