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Electrical and thermal transport in carbon nanotubes: Improved nanotube-based materials and thermoelectric power in the Coulomb blockade regime.

机译:碳纳米管中的电和热传递:库仑阻滞体系中基于纳米管的材料和热电性能得到改善。

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摘要

We have studied the electrical and thermal properties of single wall carbon nanotubes (SWNTs) both at the bulk and single molecule level. The first group of experiments aims to verify the zone-folding model for the thermal conductivity kappa(T) of SWNTs. Because of the geometry of SWNTs, the phonon (as well as electronic) states are quantized. This quantization leads to an observed linear behavior of kappa(T) below 40 K. By varying the average diameters of bulk samples, the temperature at which higher phonon subbands contribute shifts, further evidence for phonon quantization.; The second set of experiments are aimed at studying the transport properties of nanotube based materials. These include highly aligned SWNT films; SWNT-epoxy composites and nanotube fibers. We observed improvement in kappa of these materials compared to disordered films and pristine epoxy. We have also characterized the electrical and thermal transport in C60-filled SWNTs and have found that at high temperatures, their thermoelectric power (TEP) does not become negative compared to unfilled material. This behavior is proposed to be due to the C60 balls preventing oxygen from leaving the interior of the tubes.; The last set of experiments focuses on the first measurements of the TEP of SWNT bundles and individual SWNTs. We present a novel device we have developed that allows us to measure the TEP directly of single molecules. Our first experiments on bundles reveal p-type behavior and a temperature dependence that is very similar to air-exposed bulk samples. We surmise that inter-rope contacts are not important in the total TEP of SWNT films. At the single molecule level, the TEP of a semiconducting nanotube has been measured in the Coulomb blockade regime. We observe TEP oscillations, the amplitude and period of which are consistent with the theory of the TEP of quantum dots. Also, as the tube is depleted of carriers, the oscillations grow larger and are centered around an offset value of the TEP. We attribute the offset to defects on the tube and the Schottky barriers at the contacts which contribute a negative thermopower. From the TEP offset, we are also able to estimate the size of the depleted regions in the nanotube.
机译:我们已经研究了单壁碳纳米管(SWNT)在体积和单分子水平上的电学和热学性质。第一组实验旨在验证单壁碳纳米管的导热系数κ(T)的区域折叠模型。由于单壁碳纳米管的几何形状,声子(以及电子)状态被量化。这种量化导致观察到的Kappa(T)在40 K以下的线性行为。通过改变大量样本的平均直径,较高声子子带贡献的温度会发生变化,这是声子量化的进一步证据。第二组实验旨在研究纳米管基材料的传输性能。其中包括高度对齐的SWNT薄膜; SWNT-环氧树脂复合材料和纳米管纤维。与无序薄膜和原始环氧树脂相比,我们观察到这些材料的卡伯值有所改善。我们还对C60填充的单壁碳纳米管的电和热传输进行了表征,并发现在高温下,其热电功率(TEP)与未填充的材料相比不会变负。提出这种行为是由于C60球防止氧气离开管子的内部。最后一组实验着重于SWNT束和单个SWNT的TEP的首次测量。我们介绍了一种我们开发的新颖设备,它使我们能够直接测量单个分子的TEP。我们对束的第一个实验揭示了p型行为和对温度的依赖性,这与空气暴露的大块样品非常相似。我们推测,在SWNT薄膜的总TEP中,层间接触并不重要。在单分子水平上,已经在库仑阻滞方案中测量了半导体纳米管的TEP。我们观察到TEP振荡,其振幅和周期与量子点的TEP理论一致。而且,随着管中载流子的耗尽,振荡会变大并以TEP的偏移值为中心。我们将偏移归因于管子上的缺陷和触点处的肖特基势垒,这会带来负热功率。从TEP偏移量中,我们还能够估计纳米管中耗尽区域的大小。

著录项

  • 作者

    Llaguno, Marc Caballes.;

  • 作者单位

    University of Pennsylvania.;

  • 授予单位 University of Pennsylvania.;
  • 学科 Physics Condensed Matter.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 114 p.
  • 总页数 114
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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