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Investigating ionomer morphologies with STEM and SAXS: Toward rigorous processing-structure-property relationships.

机译:用STEM和SAXS研究离聚物的形态:建立严格的加工-结构-性能关系。

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摘要

Due to their extraordinary chemical and physical properties, ionomers have found wide-ranging applications including chemically resistant thermoplastics, robust coatings, and selectively permeable ion-transport membranes. The unique properties of ionomers result directly from the self-assembly/organization of ionic functional groups and counterions into nanoscale aggregates which act as transient physical crosslinks. For more than a half century, significant effort has been devoted toward understanding these structurally complex multi-component polymers, however, a complete description of their processing-structure-property relationships remains elusive. Quantifying these relationships will provide an important step toward the rational design, synthesis, and preparation of superior ionomeric materials.;In order to rigorously advance the study of ionomer morphology, we combine traditional small angle X-ray scattering (SAXS) approaches with cutting-edge real space imaging via scanning transmission electron microscopy (STEM). This technique has provides high resolution imaging capability in which the image contrast is generated by differences in local average atomic number. Our work has shown that these characterization methods can be used to obtain complementary morphological information regarding the size, shape, and spatial distribution of the nanoscale ionic aggregates that control the physical properties of ionomers. With this information, we evaluate the validity of prevalent structural/morphological models and systematically explore how the nanoscale morphology is affected by changes in polymer backbone structure, materials chemistry, and processing.
机译:由于离聚物具有非凡的化学和物理性能,它们已发现了广泛的应用,包括耐化学腐蚀的热塑性塑料,坚固的涂层和选择性渗透的离子传输膜。离聚物的独特性能直接归因于离子官能团和抗衡离子自组装/组织成纳米级聚集体,这些纳米聚集体充当瞬时物理交联键。半个多世纪以来,人们一直致力于理解这些结构复杂的多组分聚合物,然而,对其加工-结构-性质关系的完整描述仍然难以捉摸。量化这些关系将为合理设计,合成和制备优异的离聚物材料提供重要的一步。为了严格推进离聚物形态的研究,我们将传统的小角度X射线散射(SAXS)方法与切割技术相结合。扫描透射电子显微镜(STEM)进行边缘真实空间成像。该技术具有高分辨率成像能力,其中通过局部平均原子序数的差异产生图像对比度。我们的工作表明,这些表征方法可用于获得有关控制离聚物物理性质的纳米级离子聚集体的大小,形状和空间分布的互补形态信息。有了这些信息,我们评估了流行的结构/形态模型的有效性,并系统地探索了聚合物骨架结构,材料化学和加工方面的变化如何影响纳米级形态。

著录项

  • 作者

    Benetatos, Nicholas M.;

  • 作者单位

    University of Pennsylvania.;

  • 授予单位 University of Pennsylvania.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 149 p.
  • 总页数 149
  • 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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