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An ionic polymer-metal composite actuator based on PSMI-incorporated PVDF with chemical stability and performance durability

机译:基于PSMI结合的PVDF的离子聚合物-金属复合执行器,具有化学稳定性和性能耐久性

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To develop artificial muscles with improved performance, a novel ionic polymer-metal composite (IPMC) actuator was developed by employing the newly-synthesized ionic networking film of poly (styrene-alt-maleimide) (PSMI)-incorporated poly (vinylidene fluoride) (PVDF). Scanning electron microscope and transmission electron microscopy revealed that much smaller and more uniform nano-sized platinum particles were formed on the surfaces of the film as well as within its polymer matrix after the electroless-plating process. Fourier transform infrared results suggested that no hydrolysis occurred for the as-prepared film actuator before and after the exposure to the elevated PH solutions at 25°C for 48h. The new actuator showed much larger tip displacement than that of a Nafion-based counterpart under the applied electrical stimulus, and overcame the back relaxation of the traditional IPMC actuator under the constant voltage. The current actuator was operated over 6.5h at high-frequency sinusoidal excitation, and its tip displacement was still comparable to that of the referenced Nafion actuator when the test was terminated. The excellent electromechanical performance is due to the inherent large ionic-exchange capacity and the unique hydrophilic nano-channels of the ionic networking film. Furthermore, the working principle of the developed IPMC actuator is thought to be based on a combination of piezoelectricity and ionic transport. The film of PSMI-incorporated PVDF has some advantages over the most widely-used Nafion-based one by diversifying niche applications in biomimetic motion, and the present study is believed to open a new avenue for the design and fabrication of the electro-active polymer film with unique functional properties.
机译:为了开发具有改善性能的人造肌肉,通过使用新合成的聚苯乙烯-马来酰亚胺(PSMI)并入的聚偏二氟乙烯的离子网络薄膜,开发了一种新型的离子聚合物-金属复合材料(IPMC)促动器( PVDF)。扫描电子显微镜和透射电子显微镜显示,在化学镀过程之后,在膜的表面以及在其聚合物基体内形成了更小,更均匀的纳米级铂颗粒。傅里叶变换红外结果表明,在25°C暴露于升高的PH溶液中48h之前和之后,制得的薄膜致动器均未发生水解。在施加电刺激的情况下,新的执行器的尖端位移要比基于Nafion的同类驱动器大得多,并且克服了传统IPMC致动器在恒定电压下的向后松弛。当前的执行器在高频正弦激励下运行了6.5小时,并且在测试终止时其尖端位移仍与参考的Nafion执行器相当。优异的机电性能归因于离子网络膜固有的巨大离子交换能力和独特的亲水性纳米通道。此外,开发的IPMC执行器的工作原理被认为是基于压电和离子传输的结合。结合PSMI的PVDF薄膜通过在仿生运动中多样化利基应用而具有优于最广泛使用的Nafion薄膜的优势,并且相信本研究为电活性聚合物的设计和制造开辟了新途径。具有独特功能特性的薄膜。

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