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Enhanced electromechanical performance of P(VDF-TrFE-CTFE) thin films hybridized with highly dispersed carbon blacks

机译:与高分散炭黑杂化的P(VDF-TrFE-CTFE)薄膜的增强的机电性能

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摘要

The fluoride-based electrostrictive terpolymers are attractive in electromechanical applications. To obtain high electromechanical performance, the terpolymers are hybridized with various fillers such as carbon materials. However, the previous hybrid films have been fabricated with thickness of 20-100 mu m due to poor dispersion of the fillers, indicating that these electrostrictive films require high driving voltages of more than 200 V. Herein, we have demonstrated the electrostrictive P(VDF-TrFE-CTFE) thin film hybridized with highly dispersed carbon blacks (CB). The CBs were chemically oxidized to improve the dispersion in the polymer matrix, thus leading to a successful fabrication of the oxidized CB/P(VDF-TrFE-CTFE) hybrid films with 8 mu m thickness using solution casting method. The P(VDF-TrFE-CTFE) thin film with 2.75 wt% oxidized CB shows 1.6 fold increased dielectric constant and maximum polarization with low loss factor compared to the pure terpolymer. These enhancements of the 8 mu m thick hybrid film enable to yield useful mechanical output at low driving voltages below 100 V. To evaluate the electromechanical performance of hybrid thin films, a unimorph cantilever was fabricated. With a low applied voltage of 90 V, the cantilever based on P(VDF-TrFE-CTFE) thin film with 2.75 wt% oxidized CB produces a displacement twice as high as that of the pure terpolymer. These results provide the first feasibility study of electrostrictive composites for practical applications, particularly human-related applications requiring a low driving voltage.
机译:氟化物基电致伸缩三元共聚物在机电应用中具有吸引力。为了获得较高的机电性能,将三元共聚物与各种填料(例如碳材料)混合。但是,由于填料的分散性差,先前的杂化膜的厚度为20-100μm,这表明这些电致伸缩膜需要200 V以上的高驱动电压。在此,我们证明了电致伸缩P(VDF) -TrFE-CTFE)薄膜与高度分散的炭黑(CB)混合。对CB进行化学氧化以改善其在聚合物基质中的分散性,从而通过溶液流延法成功制备了厚度为8μm的氧化CB / P(VD​​F-TrFE-CTFE)杂化膜。与纯三元共聚物相比,具有2.75 wt%氧化CB的P(VDF-TrFE-CTFE)薄膜显示出1.6倍的介电常数增加和最大极化,损耗因子低。 8微米厚混合膜的这些增强使得能够在低于100 V的低驱动电压下产生有用的机械输出。为评估混合薄膜的机电性能,制造了单晶悬臂。在90 V的低施加电压下,基于具有2.75 wt%氧化CB的P(VDF-TrFE-CTFE)薄膜的悬臂梁产生的位移是纯三元共聚物的两倍。这些结果为实际应用中的电致伸缩复合材料提供了首次可行性研究,特别是需要低驱动电压的与人相关的应用。

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