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Properties of a Dielectric Elastomer Actuator Modified by Dispersion of Functionalised Carbon Nanotubes

机译:通过官能化碳纳米管分散改性介电弹性体致动器的性质

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Among the broad class of electro-active polymers, dielectric elastomer actuators represent a rapidly growing technology for electromechanical transduction. In order to further develop this applied science, the high driving voltages currently needed must be reduced. For this purpose, one of the most promising and adopted approach is to increase the dielectric constant while maintaining both low dielectric losses and high mechanical compliance. In this work, a dielectric elastomer was prepared by dispersing functionalised carbon nanotubes into a polyurethane matrix and the effects of filler dispersion into the matrix were studied in terms of dielectric, mechanical and electromechanical performance. An interesting increment of the dielectric constant was observed throughout the collected spectrum while the loss factor remained almost unchanged with respect to the simple matrix, indicating that conductive percolation paths did not arise in such a system. Consequences of the chemical functionalisation of carbon nanotubes with respect to the use of unmodified filler were also studied and discussed along with rising benefits and drawbacks for the whole composite material.
机译:在广泛的电气活性聚合物中,介电弹性体致动器代表了一种用于机电转导的快速增长的技术。为了进一步发展这种应用科学,必须减少当前需要的高驱动电压。为此目的,最有前途和采用的方法之一是增加介电常数,同时保持低介电损耗和高机械顺应性。在这项工作中,通过将官能化的碳纳米管分散到聚氨酯基质中来制备介电弹性体,并在介电,机械和机电性能方面研究了填料分散体进入基质中的影响。在整个收集的光谱中观察到介电常数的有趣增量,而损耗因子相对于简单的基质几乎保持不变,表明在这种系统中没有出现导电渗透路径。还研究了碳纳米管相对于使用未改性填料的化学官能化的后果,并讨论了整个复合材料的上升益处和缺点。

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