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Artificial muscle morphology : structure/property relationships in polypyrrole actuators

机译:人造肌肉形态:聚吡咯致动器中的结构/性质关系

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摘要

We seek to improve polypyrrole and other conducting polymer actuators by discovering and exploiting the connection between nanoscale transport events and macroscale active strain. To this end we have used diffraction and electron microscopy to investigate the microstructure of polypyrrole. and propose a new description consisting of disordered polypyrrole chains held together by small crystalline bundles, around which solvent and counterions are randomly distributed. We utilize different modes of deformation to impart orientational texture to polypyrrole films, and show that by controlling polymer chain conformation and packing at a sub-micron level a conducting polymer actuator can be engineered that shows a significantly larger macroscopic electroactive response. We also alter the synthesis and doping conditions to produce films with widely varying surface morphologies, allowing us to control the rate of electroactive response. Our detailed understanding of polypyrrole morphology at different lengthscales provides valuable insight to the mechanisms of polypyrrole actuation, and has helped us process polypyrrole more intelligently for improved electroactive devices.
机译:我们寻求通过发现和利用纳米级传输事件和大型活动应变之间的联系来改进聚吡咯和其他导电聚合物致动器。为此,我们已经使用衍射和电子显微镜研究了聚吡咯的微观结构。并提出了一种新的描述,该描述由无序的聚吡咯链通过小晶体束连接在一起,溶剂和抗衡离子在其周围随机分布。我们利用不同的变形模式将取向纹理赋予聚吡咯膜,并显示通过控制聚合物链构象和亚微米级堆积,可以设计出导电聚合物致动器,从而显示出明显更大的宏观电活性。我们还改变了合成和掺杂条件,以生产出具有广泛变化的表面形态的薄膜,从而使我们能够控制电活性响应的速率。我们对不同长度尺度上的聚吡咯形态的详细了解为聚吡咯的致动机理提供了宝贵的见解,并帮助我们更智能地加工聚吡咯,从而改进了电活性器件。

著录项

  • 作者

    Pytel Rachel Zimet;

  • 作者单位
  • 年度 2007
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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