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Centrifugation-based Purification of Emerging Low-dimensional Materials and Their Thin-film Applications.

机译:新兴低维材料的离心分离纯化及其薄膜应用。

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摘要

Polydispersity in low-dimensional materials offers many interesting challenges and properties. In particular, the one- and two-dimensional carbon allotropes such as carbon nanotubes and graphene have demonstrated exquisite optoelectronic properties that are highly sensitive to their physical structures, where subtle variations in diameter and thickness render them with significantly different electronic band structures. Thus, the carbon nanomaterials have been the subject of extensive studies that address their polydispersity issues. Among these, solution-phase, buoyant density-based methods such as density gradient ultracentrifugation have been widely utilized to enrich subpopulations of carbon nanotubes and graphene with narrow distribution in diameter and thickness, enabling their applications in various next-generation thin-film devices.;In this thesis, I present further advancement of centrifugation-based processing methods for emerging low-dimensional materials through systematic utilization of previously explored surfactant systems, development of novel surfactant types, and study of correlation between the chemical structure of surfactants and the dispersion and optoelectronic properties of the nanomaterials. First, I employ an iterative density gradient ultracentrifugation with a combination of anionic surfactants and addition of excess counter-ions to achieve isolation of novel diameter species of semiconducting single-walled carbon nanotubes. The purification of carbon nanotubes with simultaneous, ultrahigh-purity refinement in electronic type and diameter distribution leads to collaborative studies on heat distribution characteristics and diameter-dependent direct current and radio frequency performances in monodisperse carbon nanotube thin-film transistors. Next, I develop the use of non-ionic polymeric surfactants for centrifugation-based processes. Specifically, I utilize polypropylene and polyethylene oxide-based block copolymers with density gradient ultracentrifugation to enrich high purity semiconducting and metallic carbon nanotubes. Furthermore, by employing the block copolymers as surfactant in a simple centrifugation process, aqueous dispersions of single- to few-layered graphene nanosheets with high concentration are prepared. This study elucidates the correlation between the molecular structure of block copolymers and their dispersion efficiency and degree of defects for graphene nanosheets. Lastly, the application of block copolymers is extended to facilitate solution-phase purification processes for transition metal dichalcogenides, and their photoluminescence in aqueous dispersion is revealed to be dependent on the chemical structure of the surfactant used for exfoliation and stabilization. Overall, these results illustrate the significance of understanding the role of surfactants in solution-phase processing of nanomaterials, and the motivation for further development of surfactant-assisted purification processes for scalable applications of the emerging nanomaterials.
机译:低维材料的多分散性带来了许多有趣的挑战和特性。特别是,一维和二维碳同素异形体,例如碳纳米管和石墨烯,已经表现出对它们的物理结构高度敏感的精湛光电性能,其中直径和厚度的细微变化使它们具有明显不同的电子能带结构。因此,碳纳米材料已经成为解决其多分散性问题的广泛研究的主题。其中,基于溶液相,基于密度的浮力的方法(例如密度梯度超速离心)已被广泛用于富集直径和厚度分布较窄的碳纳米管和石墨烯的亚群,从而使其可用于各种下一代薄膜器件中。 ;在本文中,我将通过系统地利用先前探索过的表面活性剂体系,开发新型表面活性剂类型以及研究表面活性剂的化学结构与分散体之间的相关性,研究新兴的低维材料基于离心的处理方法的进一步发展。纳米材料的光电性能。首先,我将阴离子表面活性剂与过量抗衡离子结合使用迭代密度梯度超速离心技术,以实现半导体单壁碳纳米管的新型直径物种的分离。在电子类型和直径分布上同时进行超高纯度精制的碳纳米管的纯化导致对单分散碳纳米管薄膜晶体管中的热分布特性以及与直径相关的直流和射频性能的合作研究。接下来,我开发了将非离子型聚合物表面活性剂用于基于离心的过程。具体来说,我利用密度梯度超速离心法基于聚丙烯和聚环氧乙烷的嵌段共聚物来丰富高纯度半导体和金属碳纳米管。此外,通过在简单的离心过程中将嵌段共聚物用作表面活性剂,制备了具有高浓度的单层至数层石墨烯纳米片的水分散体。这项研究阐明了嵌段共聚物的分子结构与其分散效率和石墨烯纳米片缺陷程度之间的相关性。最后,扩大了嵌段共聚物的应用范围,以促进过渡金属二卤化物的溶液相纯化工艺,并且发现它们在水分散体中的光致发光取决于用于剥离和稳定化的表面活性剂的化学结构。总的来说,这些结果说明了了解表面活性剂在纳米材料的固溶相处理中的作用的重要性,以及为新兴的纳米材料的可扩展应用进一步开发表面活性剂辅助纯化工艺的动机。

著录项

  • 作者

    Seo, Jung Woo.;

  • 作者单位

    Northwestern University.;

  • 授予单位 Northwestern University.;
  • 学科 Materials science.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 119 p.
  • 总页数 119
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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