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Fabrication of novel nanomaterials for polymer electrolyte membrane fuel cells and self-cleaning applications.

机译:用于聚合物电解质膜燃料电池的新型纳米材料的制备及其自清洁应用。

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摘要

Materials scientists have embraced nanoscale materials as allowing new degrees of freedom in materials design, as well as producing completely new and enhanced properties compared with conventional materials. However, most nanofabrication methods are tedious and expensive, or require extreme conditions. This thesis presents efficient methods for generating nanostructured materials under relatively mild chemistry and experimental conditions.; The basis of most of this work is porous anodic aluminum oxide (p-AAO) membranes, which have hexagonally close-packed pores and were fabricated following a two-step aluminum anodization procedure. Partially removing the barrier layer of a p-AAO membrane enabled the preparation of silver nanorod arrays using a very simple electrodepostition procedure. One dimensional (1-D) alumina nanostructures were also electrochemically synthesized on the surface of a p-AAO membrane by carefully controlling the anodization parameters.; Polyacrylonitrile nanofibers containing platinum salt were fabricated by polymerization of acrylonitrile in p-AAO templates. Subsequent pyrolysis resulted in carbon nanofibers wherein the platinum salt is reduced in-situ to elemental Pt. The Pt nanoparticles are dispersed throughout the carbon nanofibers, have a narrow size range, and are single crystals. Rotating disc electrode voltammetry suggests that the dispersion of Pt nanocrystals in the carbon nanofiber matrix should exhibit excellent electrocatalytic activity. The preparation of catalyst ink and the construction of membrane-electrode-assembly need to be optimized to get better performance in polymer electrolyte membrane fuel cells.; Platinum nanoparticles embedded in carbon fibers were also prepared using electrospinning. The prepared platinum nanoparticles are narrowly distributed in size and well dispersed in the carbon matrix. This method can provide a large yield of products with a simple setup and procedure.; 2-D arrays of nanopillars made from perfluoropolyether (PFPE) derivatives were fabricated using p-AAO membrane templates. Pretexturing the aluminum prior to anodization enables one to engineer multiple morphological length scales and thereby synthesize a lotus leaf-like topography. Both nanopillars on a flat surface and on a lotus leaf-like topology exhibit superhydrophobicity, low contact angle hysteresis and self-cleaning.
机译:材料科学家已经接受了纳米级材料,因为它允许材料设计具有新的自由度,并且与传统材料相比具有全新的增强特性。然而,大多数纳米制造方法繁琐且昂贵,或者需要极端条件。本文提出了在相对温和的化学和实验条件下产生纳米结构材料的有效方法。大多数这项工作的基础是多孔阳极氧化铝(p-AAO)膜,该膜具有六边形密堆积的孔,并按照两步铝阳极氧化工艺制造。部分去除p-AAO膜的阻挡层使得能够使用非常简单的电沉积程序制备银纳米棒阵列。通过仔细控制阳极氧化参数,还可以在p-AAO膜的表面上电化学合成一维(1-D)氧化铝纳米结构。通过在p-AAO模板中聚合丙烯腈,制备了含铂盐的聚丙烯腈纳米纤维。随后的热解产生了碳纳米纤维,其中铂盐原位还原为元素Pt。 Pt纳米颗粒分散在整个碳纳米纤维中,具有窄的尺寸范围,并且是单晶。旋转圆盘电极伏安法表明,Pt纳米晶体在碳纳米纤维基质中的分散应表现出优异的电催化活性。需要优化催化剂墨水的制备和膜电极组件的结构,以在聚合物电解质膜燃料电池中获得更好的性能。还使用静电纺丝制备了嵌入碳纤维中的铂纳米颗粒。所制备的铂纳米颗粒尺寸狭窄且分散在碳基质中。这种方法可以通过简单的设置和步骤提供大量的产品。使用p-AAO膜模板制造了由全氟聚醚(PFPE)衍生物制成的二维纳米柱阵列。在阳极氧化之前对铝进行预纹理化处理,使人们能够设计出多种形态长度尺度,从而合成出荷叶状的形貌。平坦表面和荷叶状拓扑上的纳米柱都表现出超疏水性,低接触角滞后和自清洁性。

著录项

  • 作者

    Zhang, Lei.;

  • 作者单位

    The University of North Carolina at Chapel Hill.;

  • 授予单位 The University of North Carolina at Chapel Hill.;
  • 学科 Engineering Materials Science.; Energy.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 176 p.
  • 总页数 176
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;能源与动力工程;
  • 关键词

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