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Key steps towards carbon nanotube-based conductors.

机译:迈向基于碳纳米管的导体的关键步骤。

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摘要

Making a robust carbon nanotube-based conductor as a replacement of copper in electricity grids can initiate a paradigm shift in energy transmission. This dissertation identifies four fundamental factors for making carbon nanotube-based conductors as functionalization, dispersion, concentration and processing. These four factors are discussed in detail by studying four separate systems: nanotube/epoxy composites, nanotube/porous medium density polyethylene (MDPE) composites, nanotube/high density polyethylene (HDPE) composites and pure nanotube cables.;In nanotube/epoxy composites, homogeneous dispersion of nanotubes and a strong interface between nanotubes and epoxy matrix were simultaneously achieved through the development of a novel nanotube functionalization. While the degree of functionalization was high, the process was non-destructive to the mechanical properties of the nanotubes. In addition, the functional groups constructed covalent bonds with the epoxy matrix and also made dispersing the nanotubes much easier. As a result, the composites reinforced by the functionalized nanotubes had better mechanical properties than the samples reinforced by the raw nanotubes.;In nanotube/porous MDPE composites, the degree of nanotube dispersion reached a level of 1 micron for nanotube agglomerate size within the matrix. This successful dispersion was primarily attributed to creating the porous MDPE. The pore size was tuned to be as small as 1 micron so that the sub-micron long HiPco nanotubes could easily penetrate into the matrix. The nanotube/porous MDPE composites obtained enhancement both in mechanical strength and electrical conductivity compared to the control samples.;In nanotube/HDPE composites, the nanotube conducting networks were studied. Conductivity of the composites with the loading ratio at the percolation threshold was not sufficiently high for conductor applications. Nanotube/HDPE composite wires with higher loading ratios up to 40 wt% were prepared. Key factors for improving the formation of the conducting networks were identified. Through optimization in processing, maximum conductivity of ∼103 S/m was achieved.;Pure nanotube cables were prepared by a solid spinning procedure, which showed the potential to make macroscopic cables of various length and thickness. The pure nanotube cables circumvented the bottleneck in improving conductivity for composite systems, in which polymer in-between the nanotubes caused high contact resistance. The pure nanotube cables reached conductivity as high as ∼106 S/m. Through iodine doping, conductivity further was enhanced so that the specific conductivity of the doped cables exceeded that of metals such as copper.;As a result of applying the knowledge learned from study of the four fundamental factors, a macroscopic carbon-nanotube cable was created. It reached an unprecedented conductivity as high as ∼107 S/m. Mechanically it was more robust than steel, but with 1/6 the weight. This advanced nanotube-based conductor can have a wide spectrum of applications such as transmission lines and low dimensional connecting wires.
机译:制造坚固的碳纳米管基导体来替代电网中的铜可以引发能量传输的范式转变。本文从功能化,分散性,集中性和加工性四个方面确定了制造碳纳米管基导体的四个基本因素。通过研究四个独立的系统详细讨论了这四个因素:纳米管/环氧树脂复合材料,纳米管/多孔中密度聚乙烯(MDPE)复合材料,纳米管/高密度聚乙烯(HDPE)复合材料和纯纳米管电缆。通过开发新型的纳米管功能化,可同时实现纳米管的均匀分散以及纳米管与环氧基质之间的牢固界面。尽管官能化程度高,但是该方法对纳米管的机械性能无损。另外,这些官能团与环氧基质建立了共价键,也使纳米管的分散更加容易。结果,用功能化纳米管增强的复合材料的机械性能要比用原始纳米管增强的样品的机械性能更好。在纳米管/多孔MDPE复合材料中,纳米管在基体内的纳米管团聚体尺寸达到了1微米。该成功的分散主要归因于产生多孔MDPE。将孔径调整为小至1微米,以便亚微米长的HiPco纳米管可以轻松渗透到基质中。与对照样品相比,纳米管/多孔MDPE复合材料的机械强度和电导率均有所提高。在纳米管/ HDPE复合材料中,研究了纳米管的导电网络。负载比在渗滤阈值以下的复合材料的电导率不足以用于导体应用。制备了具有高达40 wt%的更高负载率的纳米管/ HDPE复合线。确定了改善导电网络形成的关键因素。通过优化工艺,可实现约103 S / m的最大电导率。通过固纺工艺制备了纯纳米管电缆,这显示了制造各种长度和厚度的宏观电缆的潜力。纯纳米管电缆绕过了提高复合系统电导率的瓶颈,在复合系统中,纳米管之间的聚合物引起高接触电阻。纯纳米管电缆的电导率高达〜106 S / m。通过碘掺杂,电导率进一步提高,从而使掺杂电缆的比电导率超过了金属(例如铜)的比电导率。通过应用从四个基本因素的研究中学到的知识,创建了一种宏观的碳纳米管电缆。它达到了前所未有的高达107 S / m的电导率。机械上,它比钢坚固,但重量只有1/6。这种先进的基于纳米管的导体可以具有广泛的应用范围,例如传输线和低维连接线。

著录项

  • 作者

    Zhao, Yao.;

  • 作者单位

    Rice University.;

  • 授予单位 Rice University.;
  • 学科 Nanotechnology.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 121 p.
  • 总页数 121
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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