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Molecular templated assembly of single-walled carbon nanotubes and their electrical characterization.

机译:单壁碳纳米管的分子模板组装及其电学表征。

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摘要

We have developed a method for rapid, massively-parallel assembly and alignment of single walled carbon nanotubes (SWCNT) on a solid-state substrate. The results opened the possibility of production of SWCNT-based integrated circuits. In this strategy called "surface-templated assembly", SWCNTs from a solvent suspension are directed toward molecular patterns on the substrate and self-assemble onto specific locations with precise orientations. Since the method does not rely on any external forces or slow serial patterning techniques, it can be done in a completely parallel manner and is suitable for high-throughput applications. We have demonstrated the assembly of millions of individual SWCNTs and SWCNT-based circuit structures over ∼ 1cm2 size sample surface in a matter of minutes.; The experiments were first carried out on patterned hybrid self-assembled monolayers (SAM) of polar molecules and nonpolar molecules. Polar molecules were patterned with SAM of nonpolar molecules, such as 1-octadecanethiol (ODT). The molecular templated substrates were used successfully to assemble SWCNT. Polar molecules with different tail groups, both positive and negative, were shown to be effective, in contrast to the prediction that only molecules with positive tails can be used to align SWCNTs. Furthermore, we observed that the interaction between SWCNTs and metal surfaces also can be used to align SWCNTs using only nonpolar molecular patterns. A series of controlled experiments showed that the number density of aligned SWCNTs depends upon the nature of polar molecules and metal surfaces.; We have also assembled SWCNTs on patterns of Au nanoparticles. Au nanoparticle patterns were created on composite SAM templates of nonpolar (ODT) and dithiol (octanedithiol) molecules through self-assembly of Au nanopaticles onto the dithiol region. On such templates, we found very strong adhesion of SWCNTs on Au nanoparticles and no adhesion on the nonpolar regions. We also examined systematically the adhesion of SWCNT on nonpolar molecules with varying coverage of Au. We found no SWCNT attachment when Au coverage is significant but incomplete. Strong adhesion of SWCNT is observed only when the coverage of nonpolar regions by Au is almost complete. These results indicates that nonpolar molecules like ODT play an active role in the alignment of SWCNT on ODT/metal and polar SAMs/ODT hybrid structures. Metal nanoparticle patterns on SAM can also be created via simple metal deposition. With the deposition of a thin metal (Au, Ti, Cr, etc.) film, cluster formation was observed over microscale SAM of nonpolar molecules while for polar molecule patterns of comparable size no cluster formation was observed. (Abstract shortened by UMI.)
机译:我们已经开发出一种在固态基板上快速,大规模平行组装和对齐单壁碳纳米管(SWCNT)的方法。结果打开了生产基于SWCNT的集成电路的可能性。在这种称为“表面模板组装”的策略中,来自溶剂悬浮液的SWCNT指向基板上的分子图案,并以精确的方向自组装到特定位置。由于该方法不依赖任何外力或慢速串行构图技术,因此可以完全并行地完成,并且适合高通量应用。我们已经证明了在数分钟内在约1cm2的样本表面上组装了数百万个单独的SWCNT和基于SWCNT的电路结构。首先在极性分子和非极性分子的图案化杂化自组装单分子层(SAM)上进行实验。极性分子使用非极性分子的SAM(例如1-十八碳硫醇(ODT))进行图案化。分子模板化的基板已成功用于组装SWCNT。与仅具有正尾巴的分子可用于排列SWCNT的预测相反,具有不同尾基的正负两个极性分子均被证明是有效的。此外,我们观察到SWCNT与金属表面之间的相互作用也可用于仅使用非极性分子图案来对齐SWCNT。一系列对照实验表明,排列的单壁碳纳米管的数量密度取决于极性分子和金属表面的性质。我们还在金纳米颗粒的图案上组装了SWCNT。通过将金纳米颗粒自组装到二硫醇区域上,在非极性(ODT)和二硫醇(octanedithiol)分子的复合SAM模板上创建金纳米颗粒图案。在此类模板上,我们发现SWCNT在Au纳米颗粒上具有非常强的粘附力,在非极性区域上没有粘附力。我们还系统地检查了SWCNT在具有不同Au覆盖率的非极性分子上的粘附力。当金的覆盖率很大但不完整时,我们发现没有SWCNT附着。仅当Au几乎完全覆盖了非极性区域时,才能观察到SWCNT的强粘附力。这些结果表明,像ODT这样的非极性分子在ODT /金属和极性SAM / ODT杂化结构上的SWCNT排列中起着积极的作用。 SAM上的金属纳米颗粒图案也可以通过简单的金属沉积来创建。通过沉积薄金属(Au,Ti,Cr等)膜,在非极性分子的微型SAM上观察到簇形成,而对于相当大小的极性分子图案,则未观察到簇形成。 (摘要由UMI缩短。)

著录项

  • 作者

    Rao, Saleem Ghaffar.;

  • 作者单位

    The Florida State University.;

  • 授予单位 The Florida State University.;
  • 学科 Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 O49;
  • 关键词

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