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Electromechanical properties of nanotube-PVA composite actuator bimorphs

机译:纳米管-PVA复合致动器双压电晶片的机电性能

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Oxidized multiwalled carbon nanotube (oxidized-MWNT)/polyvinyl alcohol (PVA) composite sheets have been prepared for electromechanical actuator applications. MWNT have been oxidized by nitric acid treatments. They were then dispersed in water and mixed with various amounts of PVA of high molecular weight (198 000 g mol(-1)). The composite sheets were then obtained through a membrane filtration process. The composition of the systems has been optimized to combine suitable mechanical and electrical properties. Thermogravimetric analysis, mechanical tensile tests and conductivity measurements show that the best compromise of mechanical and electrical properties was obtained for a PVA weight fraction of about 30 wt%. In addition, one face of the sheets was coated with gold to increase the conductivity of the sheets and promote uniform actuation. Pseudo-bimorph devices have been realized by subsequently coating the composite sheets with an inert layer of PVA. The devices have been tested electromechanically in a liquid electrolyte (tetrabutylammonium/tetrafluoroborate (TBA/TFB) in acetonitrile) at constant frequency and different applied voltages, from 2 to 10 V. Measurements of the bimorph deflections were used to determine the stress generated by the nanotube-PVA sheets. The results show that the stress generated increases with increasing amplitude of the applied voltage and can reach 1.8 MPa. This value compares well with and even exceeds the stress generated by recently obtained bimorphs made of gold nanoparticles.
机译:氧化的多壁碳纳米管(氧化的MWNT)/聚乙烯醇(PVA)复合片已准备用于机电执行器应用。 MWNT已通过硝酸处理被氧化。然后将它们分散在水中,并与各种数量的高分子量PVA(198 000 g mol(-1))混合。然后通过膜过滤过程获得复合片。系统的组成已经过优化,可以结合合适的机械和电气性能。热重分析,机械拉伸试验和电导率测量表明,对于约30 wt%的PVA重量分数,可以取得最佳的机械和电气性能折衷。另外,在板的一个面上涂有金,以增加板的导电性并促进均匀的致动。伪双压电晶片器件已通过随后在复合材料片材上涂覆惰性的PVA层来实现。该器件已在液体电解质(乙腈中的四丁基铵/四氟硼酸酯(TBA / TFB))中以恒定频率和2至10 V的不同施加电压进行了机电测试。纳米管-PVA片。结果表明,所产生的应力随着施加电压幅度的增加而增加,可以达到1.8 MPa。该值与最近获得的由金纳米粒子制成的双晶型物产生的应力相比甚至更高。

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