首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Enhanced electromechanical performance of a functionalized carbon nanofiber/ionic liquid/electro-active paper composite
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Enhanced electromechanical performance of a functionalized carbon nanofiber/ionic liquid/electro-active paper composite

机译:功能化的碳纳米纤维/离子液体/电活性纸复合材料的增强的机电性能

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Trilayer actuators consisting of functionalized carbon nanofibers, ionic liquid and regenerated cellulose were fabricated simply by adopting a bimorph configuration with a regenerated cellulose-supported internal ionic liquid electrolyte layer sandwiched by electrode layers with a view to getting quick and long-lived operation in air at low applied voltages. The electrode layers include functionalized carbon nanofibers, ionic liquid and regenerated cellulose. The results indicate that the bending displacement decreases with increasing frequency and increases with increasing voltages. This actuator has a power density requirement of about 0.14 mW cm~(-2), which is achievable under microwave power, yet within radiation safety limits. The actuators exhibit larger displacement at lower voltages compared to the other CNF based actuators. In addition, the actuators can also be actuated electro-magnetically and responded well at higher frequencies compared to the actuators under electric field. The advantages of these types of actuators are an easy process of fabrication and they can be actuated remotely. Because of the electro-magnetic nature of actuation, one can also be beneficial from a contactless actuation that is not available in other actuation mechanisms like the electrostatic one.
机译:通过采用双压电晶片构造,将再生纤维素支撑的内部离子液体电解质层夹在电极层之间,从而简单地制造了由功能化碳纳米纤维,离子液体和再生纤维素组成的三层致动器,以期在空气中快速,长期运行。低施加电压。电极层包括功能化的碳纳米纤维,离子液体和再生纤维素。结果表明,弯曲位移随频率增加而减小,随电压增加而增加。该执行器的功率密度要求约为0.14 mW cm〜(-2),在微波功率下仍可达到,但仍在辐射安全范围内。与其他基于CNF的执行器相比,该执行器在较低电压下表现出更大的位移。另外,与在电场下的致动器相比,这些致动器还可以被电磁致动并且在更高的频率下响应良好。这些类型的执行器的优点是易于制造,并且可以远程执行。由于促动的电磁特性,非接触式促动也可以从中受益,在其他促动机制(如静电机构)中则无法实现。

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