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Direct assembly process: a novel fabrication technique for large strain ionic polymer transducers

机译:直接组装工艺:一种用于大应变离子聚合物换能器的新颖制造技术

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摘要

Ionic polymer transducers (IPT) consist of an ion-exchange membrane plated with flexible conductive electrodes on their outer surface. Compared to other types of electromechanical transducers, ionomeric transducers have the advantage of high-strain output (>9%), low-voltage operation (<5 V), and high sensitivity in the charge-sensing mode. A novel fabrication technique for ionic polymer transducers named the Direct Assembly Process (DAP) was developed in this paper. The DAP allows the use of any type of ionomer, diluent, and conducting powder in the transducer, and permits the exploration of any novel ionomeric design. In this paper the effect of diluent content of the IPT, electrode thickness, and composition were optimized in term of maximum peak strain and strain rate generated by an IPT. Decreasing viscosity and increasing polarity and content of the diluent were demonstrated to increase the strain rate of an IPT. The thickness of the electrode was varied and correlated with the maximum strain generated due to a 2 V step input. This study also demonstrated that RuO2 composition has an optimal loading of 42 vol%, while SWNT electrodes have an optimal performance at around 30 vol%.
机译:离子聚合物换能器(IPT)由离子交换膜组成,该离子交换膜的外表面镀有柔性导电电极。与其他类型的机电换能器相比,离聚物换能器具有高应变输出(> 9%),低压操作(<5 V)和电荷感测模式下的高灵敏度的优势。本文开发了一种用于离子聚合物换能器的新型制造技术,称为直接组装工艺(DAP)。 DAP允许在换能器中使用任何类型的离聚物,稀释剂和导电粉末,并允许探索任何新颖的离聚物设计。本文根据IPT产生的最大峰值应变和应变速率,优化了IPT的稀释剂含量,电极厚度和组成的影响。降低粘度,增加极性和稀释剂含量可提高IPT的应变速率。改变电极的厚度,并将其与由于2 V阶跃输入而产生的最大应变相关。这项研究还表明,RuO2 的最佳负载量为42%(体积),而SWNT电极的最佳性能为30%(体积)左右。

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  • 来源
    《Journal of Materials Science》 |2007年第16期|7031-7041|共11页
  • 作者单位

    Mechanical Engineering Department Center for Intelligent Material Systems and Structures Virginia Tech Blacksburg VA 24061-0261 USA;

    Mechanical Engineering Department Center for Intelligent Material Systems and Structures Virginia Tech Blacksburg VA 24061-0261 USA;

    Mechanical Engineering Department Center for Intelligent Material Systems and Structures Virginia Tech Blacksburg VA 24061-0261 USA;

    Department of Chemistry Macromolecules and Interfaces Institute Virginia Tech Blacksburg VA 24061-0261 USA;

    Department of Chemistry Macromolecules and Interfaces Institute Virginia Tech Blacksburg VA 24061-0261 USA;

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