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Carbon nanotube networks in epoxy composites and aerogels.

机译:环氧复合材料和气凝胶中的碳纳米管网络。

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摘要

This thesis describes the properties of carbon nanotube networks in epoxy composites and in novel carbon nanotube aerogels.;SWNT Epoxy composites were created using a new procedure that enabled us to control SWNT concentration and dispersion quality in the composite. The composites exhibited percolation-like electrical conductivity with threshold volume fractions in the semi-dilute nanotube concentration regime. The observed electrical conductivites are described in terms of nanotube length, degree of aggregation, and sample homogeneity. By modifying the procedure to allow for nanotube chaining, conductive composites were created at SWNT volume fractions as low as 5.2 (+1.9/-0.5) x 10-5, the lowest reported to date. The thermal conductivity of SWNT-epoxy composites is also investigated. Composites were prepared using suspensions of SWNTs in N-N-Dimethylformamide (DMF) or surfactant stabilized aqueous SWNT suspensions. Thermal conductivity enhancement was observed in both types of composites, but DMF-processed composites showed an advantage at SWNT volume fractions between &phis; ∼ 0.001 to 0.005. Surfactant processed samples, however, allowed greater SWNT loading at which a larger overall enhancement (64 +/- 9) % at &phis; ∼ 0.1 was observed. The enhancement differences are attributed to a tenfold higher SWNT/solid-composite interfacial thermal resistance in the surfactant-processed composites over DMF-processed composites. The interfacial resistance was extracted from the data using effective medium theory.;Carbon nanotube aerogels were created by freeze drying and critical point drying aqueous carbon nanotube gels. The resulting aerogels have densities of approximately 0.01 to 0.06 g/cm3 and maintain the dimensions of the wet gel. Critical point dried aerogels also preserve the microscopic three-dimensional network of debundled carbon nanotubes of the original gel. Pure SWNT aerogels are self-supporting. Reinforcement with small amounts of added polyvinyl alcohol (PVA) produces much stronger structures that can support at least 8000 times their own weight. Electrical conductivity of order 1 S/cm is observed in the self-supporting aerogels, and at least 10-2 S/cm can be achieved in PVA-reinforced aerogels through additional processing. The aerogels have potential applications in areas such as sensors, novel battery or supercapacitor electrodes, and ultra-light structural materials. They can be backfilled with polymers or other materials to create composites that retain the high conductivity of the network.
机译:本文描述了环氧复合材料和新型碳纳米管气凝胶中碳纳米管网络的性质。SWNT环氧复合材料是通过一种新的方法制成的,该方法使我们能够控制复合材料中SWNT的浓度和分散质量。在半稀释的纳米管浓度范围内,复合材料表现出类似渗透的电导率,具有阈值体积分数。观察到的电导率以纳米管长度,聚集度和样品均一性描述。通过修改程序以允许纳米管链接,可以以低至5.2(+ 1.9 / -0.5)x 10-5的SWNT体积分数创建导电复合材料,这是迄今为止报道的最低水平。还研究了SWNT-环氧树脂复合材料的导热性。使用SWNT在N-N-二甲基甲酰胺(DMF)中的悬浮液或表面活性剂稳定的SWNT水性悬浮液制备复合材料。在两种类型的复合材料中均观察到热导率提高,但是DMF处理的复合材料在φ之间的SWNT体积分数方面显示出优势。约0.001至0.005。但是,经表面活性剂处理的样品允许更大的SWNT负载量,在φ处,整体增强效果更大(64 +/- 9)%。观察到〜0.1。增强差异归因于表面活性剂处理的复合材料的SWNT /固体复合材料界面热阻比DMF处理的复合材料高十倍。使用有效介质理论从数据中提取界面电阻。碳纳米管气凝胶是通过冷冻干燥和临界点干燥水性碳纳米管凝胶制成的。所得气凝胶的密度为约0.01至0.06g / cm 3,并保持湿凝胶的尺寸。临界点干燥的气凝胶还保留了原始凝胶的去捆绑的碳纳米管的微观三维网络。纯SWNT气凝胶是自支撑的。用少量添加的聚乙烯醇(PVA)进行加固会产生更坚固的结构,可以支撑至少8000倍的自重。在自支撑气凝胶中观察到的电导率约为1 S / cm,通过额外的处理,在PVA增强的气凝胶中可以达到至少10-2 S / cm。气凝胶在传感器,新型电池或超级电容器电极以及超轻结构材料等领域具有潜在的应用。可以用聚合物或其他材料回填它们,以形成保留网络高电导率的复合材料。

著录项

  • 作者

    Bryning, Mateusz B.;

  • 作者单位

    University of Pennsylvania.;

  • 授予单位 University of Pennsylvania.;
  • 学科 Condensed matter physics.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 174 p.
  • 总页数 174
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:39:11

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