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Contactless actuation of perfluorinated ionomer membranes in salt solution: an experimental investigation

机译:盐溶液中全氟离聚物膜的非接触驱动:实验研究

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摘要

A variety of modeling frameworks have been proposed for ionic polymer metal composites (IPMCs), but the physical underpinnings of their actuation remain elusive. A critical step toward the validation of existing theories and transition to engineering practice entails the design of new experimental paradigms that could support hypothesis-driven research. While several factors exacerbate the complexity of experimenting with IPMCs, the presence of the electrodes plays a major role by hindering the repeatability of the results and bringing a number of difficult-to-measure parameters into the picture. Here, we seek to address these experimental confounds by investigating contactless actuation of perfluorinated ionomer membranes in salt solution. In contrast to IPMCs that bend toward the anode in response to an applied voltage, ionomer membranes display a consistent deflection toward the cathode. Through hypothesis-driven experiments where the membrane width, solution concentration, and voltage applied across the electrodes are systematically varied, we elucidate electrochemistry and mechanics of contactless actuation. The applied voltage and solution concentration have a dominant role on the electrochemistry, while mechanics is mainly affected by the applied voltage and membrane width. Our results depict a complex scenario, which is expected to inform future theoretical inquiries about IPMC actuation.
机译:对于离子聚合物金属复合材料(IPMC),已经提出了各种建模框架,但是其致动的物理基础仍然难以捉摸。验证现有理论并过渡到工程实践的关键一步是设计新的实验范式,以支持假设驱动的研究。尽管有几个因素加剧了IPMC实验的复杂性,但电极的存在通过阻碍结果的可重复性并将大量难以测量的参数引入图片中起着重要作用。在这里,我们试图通过研究盐溶液中全氟化离聚物膜的非接触驱动来解决这些实验上的困惑。与响应于施加的电压而向阳极弯曲的IPMC相反,离聚物膜向阴极显示出一致的偏转。通过假设驱动的实验,其中膜的宽度,溶液浓度和施加在电极上的电压会系统地变化,我们阐明了非接触驱动的电化学和力学。外加电压和溶液浓度在电化学中起主要作用,而力学主要受外加电压和膜宽度的影响。我们的结果描述了一个复杂的场景,有望为将来有关IPMC驱动的理论研究提供参考。

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