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Mechanical and electrochemical properties of an IPMC actuator with palladium electrodes in acid and alkaline solutions

机译:酸性和碱性溶液中带有钯电极的IPMC执行器的机械和电化学性能

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摘要

An ionic polymer-metal composite (IPMC) actuator, which consists of a thin perfluorinated ionomer membrane and electrodes plated on both surfaces, undergoes a large bending motion when a low electric field is applied across its thickness. IPMC actuators are lightweight and soft and can operate in solutions. They are thus promising for a wide range of applications including MEMS sensors, artificial muscles, biomimetic systems, and medical devices. The deformation behavior of IPMC actuators depends on the pH of the working solution. However, their basic mechanism is not well understood. Therefore, this study investigates the deformation mechanism of an IPMC actuator with palladium electrodes in various pH solutions. The tip displacements of IPMC actuators were measured under a step voltage in various pH solutions. Cyclic voltammetry (CV) and alternating-current (AC) impedance measurements were then performed to investigate the effects of pH on the electrochemical properties of IPMC actuators. The responses to a step voltage indicate that the deformation behavior of an IPMC actuator depends on the pH: a lower pH gives a larger maximum tip displacement and more pronounced relaxation. In CV measurements, a lower pH results in more active reduction on the palladium electrode. In AC impedance measurements, a lower pH leads to a greater charge transfer resistance and a smaller double layer capacitance in an acid solution. Based on these mechanical and electrochemical measurements, we conclude that the maximum tip displacement and relaxation are governed by reduction on the palladium electrode and that the residual tip displacement is related to the charge transfer resistance and the double layer capacitance. These results are helpful for the use and control of IPMC actuators.
机译:离子聚合物-金属复合材料(IPMC)促动器由薄的全氟化离聚物膜和镀在两个表面上的电极组成,当在其整个厚度上施加低电场时,就会经历大的弯曲运动。 IPMC执行器轻巧,柔软,可以在解决方案中运行。因此,它们有望在包括MEMS传感器,人造肌肉,仿生系统和医疗设备在内的广泛应用中使用。 IPMC执行器的变形行为取决于工作溶液的pH值。但是,它们的基本机制还没有被很好地理解。因此,本研究研究了带有钯电极的IPMC致动器在各种pH溶液中的变形机理。在各种pH溶液中的阶跃电压下测量IPMC执行器的尖端位移。然后进行循环伏安法(CV)和交流电(AC)阻抗测量,以研究pH值对IPMC执行器的电化学性能的影响。对阶跃电压的响应表明IPMC致动器的变形行为取决于pH值:较低的pH值会给出较大的最大尖端位移和更明显的松弛。在CV测量中,较低的pH值会导致钯电极上更多的活性还原。在交流阻抗测量中,较低的pH值会导致在酸性溶液中具有较大的电荷转移电阻和较小的双层电容。基于这些机械和电化学测量,我们得出结论,最大尖端位移和弛豫由钯电极上的还原来控制,并且残余尖端位移与电荷转移电阻和双层电容有关。这些结果有助于IPMC执行器的使用和控制。

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