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首页> 外文期刊>Composites Science and Technology >Correlation between dielectric, mechanical properties and electromechanical performance of functionalized graphene / polyurethane nanocomposites
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Correlation between dielectric, mechanical properties and electromechanical performance of functionalized graphene / polyurethane nanocomposites

机译:官能化石墨烯/聚氨酯纳米复合材料的电介质,力学性能和机电性能的相关性

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摘要

Carbon-based electroactive polymers (EAPs) are core materials for actuator applications. Introducing conductive fillers into EAPs is considered an effective method to improve the actuating performance, due to the enhanced dielectric properties achieved. This work describes the elaboration and characterization of polyurethane (PU)/ oxygen-functionalized graphene (OFG) composite films. Results revealed that for the nanocomposites, a large increase in dielectric constant was obtained without a great mechanical reinforcement, whereas there was no improvement in electromechanical performance as compared to pure polyurethane. The possible reasons for these discordant results were thus investigated with the help of multiscale studies. The importance of measuring the dielectric and mechanical properties under the same conditions as those used to drive actuators could be pointed out. Using high electric field values led to a better prediction of the electromechanical coefficient M31 for pure PU at low frequency, but did not completely explain the decreasing M31 found for the composites. The discrepancy could be due to the moderate adhesion between the polymer and the graphene nanoplatelets, but also to the competition between the increased dielectric constant and the decreased electric field seen by the polymer, induced by MWS interfacial polarization.
机译:基于碳的电活性聚合物(EAPS)是用于执行器应用的核心材料。将导电填料引入EAPS被认为是提高致动性能的有效方法,由于所达到的增强的介电性能。该工作描述了聚氨酯(PU)/氧官能化石墨烯(OFG)复合膜的制定和表征。结果表明,对于纳米复合材料,获得介电常数的大幅增加而无需巨大的机械增强,而与纯聚氨酯相比,机电性能没有改善。因此,在多尺度研究的帮助下调查了这些不转结果的可能原因。可以指出在与用于驱动致动器的相同条件下测量电介质和机械性能的重要性。使用高电场值导致在低频下更好地预测纯PU的机电系数M31,但没有完全解释用于复合材料的降低M31。差异可能是由于聚合物和石墨烯纳米键之间的中等粘附性,而且还具有由MWS界面极化诱导的增加的介电常数和由聚合物观察到的降低的电场之间的竞争。

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