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THE RELATION OF CONDUCTING POLYMER ACTUATOR MATERIAL PROPERTIES TO PERFORMANCE

机译:导电聚合物致动器材料性能与性能的关系

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Materials used in many branches of engineering are of low molecular weight and not flexible. As we develop more sophisticated engineering devices one can look to Nature for inspiration and advocate the use of high molecular weight flexible materials. Conducting polymer actuators will soon be used in applications where traditional low molecular weight actuator systems are incapable of mimicking the functionality provided by Nature's muscle. To incorporate conducting polymer actuators into engineering systems it is of high importance to not only model and predict the behavior of these actuators but also to understand the implication of material properties to performance. In this paper, the importance of fundamental actuation mechanisms and the fundamental material properties of conducting polymer muscles such as ionic diffusion rate, electrochemical operating window, strain to charge ratio, ratio of charge carried by positive versus negative ions, and salt draining are discussed and their effect on performance is demonstrated. The relevance of engineered geometry on the performance of conducting polymer muscles is also shown. Our understanding of what limits the performance of existing conducting polymers actuators provides directions for the improvement of the next generation of conducting polymer actuators.
机译:许多工程分支中使用的材料具有低分子量而不是柔性的。随着我们开发更复杂的工程设备,可以看出灵感的自然,并倡导使用高分子量柔性材料。电导聚合物致动器很快将用于传统的低分子量执行器系统无法模仿自然肌肉提供的功能的应用中。将导电聚合物致动器与工程系统合并到工程系统中,它不仅高于模型和预测这些执行器的行为,而且还要理解材料特性对性能的含义。本文讨论了基本致动机制的重要性以及导电聚合物肌肉等离子扩散速率,电化学操作窗口,压力比,阳性与负离子的电荷比和盐排水比例的基本物质性质。他们对性能的影响得到了证明。还显示了工程几何形状对导电聚合物肌肉性能的相关性。我们对限制现有导电聚合物执行器的性能的理解提供了改进下一代导电聚合物致动器的方向。

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